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HIGHLIGHTED ARTICLES

Importance of nonuniform Brillouin zone sampling for ab initio Bethe-Salpeter equation calculations of exciton binding energies in crystalline solids

Antonios M. Alvertis, Aurélie Champagne, Mauro Del Ben, Felipe H. da Jornada, Diana Y. Qiu, Marina R. Filip, and Jeffrey B. Neaton

Phys. Rev. B 108, 235117 (2023) - Published 4 December, 2023

Excitons in solids often reside in a narrow region of reciprocal space. Yet, it is standard for first-principles exciton calculations to sample the entire Brillouin zone uniformly, at great computational cost and resulting in underconverged exciton binding energies. Here, the authors demonstrate that a straightforward-to-implement nonuniform sampling approach yields highly converged exciton binding energies, which can significantly differ from previous best theoretical estimates, at a fraction of the computational expense of uniform sampling approaches. This will enable the prediction of exciton binding energies of increasingly complex materials.

Pb9Cu(PO4)6(OH)2: Phonon bands, localized flat-band magnetism, models, and chemical analysis

Yi Jiang, Scott B. Lee, Jonah Herzog-Arbeitman, Jiabin Yu, Xiaolong Feng, Haoyu Hu, Dumitru Călugăru, Parker S. Brodale, Eoghan L. Gormley, Maia G. Vergniory, Claudia Felser, S. Blanco-Canosa, Christopher H. Hendon, Leslie M. Schoop, and B. Andrei Bernevig

Phys. Rev. B 108, 235127 (2023) - Published 8 December, 2023

Doped lead apatite (LK-99) has been proposed as a candidate ambient temperature and pressure superconductor, a dramatic claim requiring careful investigation from experiment and theory. Here, the authors synthesize an LK-99 sample and find a multiphase, transparent material that does not support high-temperature superconductivity. This is in agreement with ab initio calculations here that suggest the copper dopant does not meaningfully enter the structure and that the flat bands they generate at the Fermi level are largely unhybridized, with no quantum geometry to support a superfluid state.

Mott insulating low thermal expansion perovskite TiF3

Donal Sheets, Kaitlin Lyszak, Menka Jain, Gayanath W. Fernando, Ilya Sochnikov, Jacob Franklin, Jason N. Hancock, and R. Matthias Geilhufe

Phys. Rev. B 108, 235140 (2023) - Published 13 December, 2023

A class of transition metal trifluorides harbors a structural quantum phase transition, above which extremely large negative thermal expansion (NTE) is shown in ScF3. A related material (TiF3) has reported a much weaker effect and attempts have been made to describe the differing thermal expansion behavior of this system using uncorrelated electronic structure calculations. Here, the authors use a combination of infrared reflectivity, ac magnetometry, and density functional theory calculations to demonstrate that in fact that TiF3 is a strongly correlated electron system, where uncorrelated approaches are ineffective. The work concludes that Mott physics is an important consideration in describing the evolution of the unusual NTE effect in these systems.

Spontaneous breaking of time-reversal symmetry and time-crystal states in chiral atomic systems

Mário G. Silveirinha, Hugo Terças, and Mauro Antezza

Phys. Rev. B 108, 235154 (2023) - Published 18 December, 2023

Half-integer spin systems are characterized by a degenerate ground state. Here, the authors show that the chiral interactions of a spin-½ qubit with the vacuum fluctuations may spontaneously break both the time-reversal and the time-translation symmetries. In the former case, the electron spin becomes anchored along some particular direction of space determined by a geometrical symmetry. In contrast, the latter situation occurs when the intrinsic spin magnetic moment undergoes a cyclic oscillation in the ground state, realizing a time crystal.

Unconventional photoinduced charge density wave dynamics in 2HNbSe2

R. Venturini, A. Sarkar, P. Sutar, Z. Jagličić, Y. Vaskivskyi, E. Goreshnik, D. Mihailovic, and T. Mertelj

Phys. Rev. B 108, 235160 (2023) - Published 20 December, 2023

Using transient optical spectroscopy, the authors investigate ultrafast optical suppression and recovery of the charge density wave (CDW) in 2H-NbSe2, a layered material where CDW and superconductivity coexist. The suppression is marked by the absence of coherent amplitude mode oscillations and a relatively slow, picosecond timescale, different from most typical CDW materials. The suppression of the CDW is only weakly nonthermal and is characterized by an excitation of a large number of phonon degrees of freedom. The recovery of the CDW phase is dominated by slow phonon diffusion.

Twist- and gate-tunable proximity spin-orbit coupling, spin relaxation anisotropy, and charge-to-spin conversion in heterostructures of graphene and transition metal dichalcogenides

Klaus Zollner, Simão M. João, Branislav K. Nikolić, and Jaroslav Fabian

Phys. Rev. B 108, 235166 (2023) - Published 22 December, 2023

Proximity effects in van der Waals heterostructures offer controllable ways to tailor the electronic band structure of adjacent 2D materials. Here, the authors perform extensive first-principles calculations, to reveal the impact of twisting, gating, stacking, interlayer distance, and encapsulation, on the spin-orbit proximitized Dirac bands in graphene/transition metal dichalcogenide heterostructures. Furthermore, the authors make specific predictions for experimentally measurable quantities, such as charge-to-spin conversion efficiency. The results highlight the enormous tunability potential of proximity-induced phenomena in van der Waals heterostructures.

Neutralization of impurities by continuous-wave excitation of high-n Rydberg excitons

J. Heckötter, B. Panda, K. Brägelmann, M. Harati, and M. Aßmann

Phys. Rev. B 108, 235212 (2023) - Published 26 December, 2023

Rydberg excitons are electron-hole pairs excited to high principle quantum numbers (n), that can be addressed in the semiconductor Cu2O. Embedded in a crystalline environment, the highest Rydberg states typically suffer from the presence electric stray fields induced by charged impurities. Here, the authors show a technique to neutralize these impurities by the excitation of Rydberg excitons. The result is an overall improvement of the absorption spectrum’s quality in terms of increased oscillator strengths and narrower linewidths, approaching the Fourier limit.

Single-electron routing in a silicon quantum-dot array

Takeru Utsugi, Takuma Kuno, Noriyuki Lee, Ryuta Tsuchiya, Toshiyuki Mine, Digh Hisamoto, Shinichi Saito, and Hiroyuki Mizuno

Phys. Rev. B 108, 235308 (2023) - Published 11 December, 2023

Free electron transport on two-dimensional quantum dot arrays has the potential to dramatically improve the efficiency of quantum computing implemented on a solid-state device. Here, the authors have successfully controlled the paths of electrons on a silicon quantum dot array using a single-electron router. They perform proof-of-principle experiments for single-electron routing, which selectively transports individual electrons along a desired path, and develop the theory for estimating a minimum error rate of the routing.

Visualizing the merger of tunably coupled graphene quantum dots

Daniel Walkup, Fereshte Ghahari, Steven R. Blankenship, Kenji Watanabe, Takashi Taniguchi, Nikolai B. Zhitenev, and Joseph A. Stroscio

Phys. Rev. B 108, 235407 (2023) - Published 6 December, 2023

The ability to pattern and simultaneously study a nanometer-scale potential landscape within hBN-based graphene devices using scanning tunneling microscopy (STM) opens a path for detailed investigation of model quantum systems. Here, the authors create a double-well potential and applied a strong magnetic field to induce Landau levels and the formation of quantum dots with single-electron charging characteristics. The system can be broadly tuned form weakly coupled dots to combined single dot while STM provides multiple measurement and manipulation modalities.

Magnetic-field periodic quantum Sondheimer oscillations in thin-film graphite

Toshihiro Taen, Andhika Kiswandhi, and Toshihito Osada

Phys. Rev. B 108, 235411 (2023) - Published 7 December, 2023

Conventional quantum oscillations are periodic in an inverse of magnetic fields. Here, the authors observe magnetic-field periodic oscillations in a graphite thin film under magnetic fields where only two Landau levels remain. At this quasiquantum limit, they propose a new quantum oscillation mechanism: the quantum Sondheimer effect. The oscillations arise from the formation of the resonant modes periodically appearing in the magnetic fields. The period is inversely proportional to the film thickness, demonstrating its out-of-plane electron motion nature.

Flat bands and electronic localization in twisted bilayer graphene nanoribbons

Elias Andrade, Pierre A. Pantaleón, Francisco Guinea, and Gerardo G. Naumis

Phys. Rev. B 108, 235418 (2023) - Published 13 December, 2023

In an infinite twisted bilayer graphene lattice, flat bands emerge, representing electrons localized at the AA stacking regions. This study investigates the behavior of these bands when dealing with incomplete moiré supercells in twisted bilayer graphene nanoribbons. The findings reveal a transition from dispersive to flat bands near charge neutrality as the supercell completeness varies. Moreover, it is observed that the microscopic edges can influence the energy of states localized at the AA regions near the borders.

Probing the edge states of Chern insulators using microwave impedance microscopy

Taige Wang, Chen Wu, Masataka Mogi, Minoru Kawamura, Yoshinori Tokura, Zhi-Xun Shen, Yi–Zhuang You, and Monica T. Allen

Phys. Rev. B 108, 235432 (2023) - Published 29 December, 2023

Quantum anomalous Hall (QAH) insulators, known for their topological 1D conducting edge states, are a focus of many recent quantum material studies. Here, the authors overcome the challenges in direct imaging and analysis of edge states by exploiting the power of microwave impedance microscopy (MIM). By analyzing the resonance pattern of 1D edge plasmon excitations, MIM can discern true topological edge states from potential trivial ones. This approach significantly advances our understanding of QAH insulators and their topological edge states.

ARTICLES

Electronic structure and strongly correlated systems

Predicting new heavy fermion materials within carbon-boron clathrate structures

Rishi Rao and Li Zhu

Phys. Rev. B 108, 235101 (2023) - Published 1 December, 2023

Time-reversal invariant topological skyrmion phases

R. Flores-Calderon and Ashley M. Cook

Phys. Rev. B 108, 235102 (2023) - Published 1 December, 2023

Femtosecond depolarization of photoluminescence from InAs: Comparison with Cu and monolayer graphene

Takeshi Koyama, Akira Fujisaki, Hiromu Odamura, Yuto Nakamura, and Hideo Kishida

Phys. Rev. B 108, 235103 (2023) - Published 1 December, 2023

Inability of linear axion holographic Gubser-Rocha model to capture all the transport anomalies of strange metals

Yongjun Ahn, Matteo Baggioli, Hyun-Sik Jeong, and Keun-Young Kim

Phys. Rev. B 108, 235104 (2023) - Published 1 December, 2023

Kondo screening and coherence in kagome local-moment metals: Energy scales of heavy fermions in the presence of flat bands

Christos Kourris and Matthias Vojta

Phys. Rev. B 108, 235106 (2023) - Published 4 December, 2023

Multiple magnetic transitions, metamagnetism, and large magnetoresistance in GdAuGe single crystals

D. Ram, J. Singh, M. K. Hooda, K. Singh, V. Kanchana, D. Kaczorowski, and Z. Hossain

Phys. Rev. B 108, 235107 (2023) - Published 4 December, 2023

Nonanalytic corrections to the Landau diamagnetic susceptibility in a two-dimensional Fermi liquid

R. David Mayrhofer and Andrey V. Chubukov

Phys. Rev. B 108, 235108 (2023) - Published 4 December, 2023

Optical study of the three-dimensional Weyl semimetal Mn3Sn

L. Y. Cao, Z. A. Xu, B. X. Gao, L. Wang, X. T. Zhang, X. Y. Zhang, Y. F. Guo, and R. Y. Chen

Phys. Rev. B 108, 235109 (2023) - Published 4 December, 2023

Criteria and analytical results for the pseudogap at the Van Hove point in two dimensions

Y. M. Vilk

Phys. Rev. B 108, 235110 (2023) - Published 4 December, 2023

Interfacial antiferromagnetic coupling driven magnetotransport properties in ferromagnetic superlattices

Sandip Halder, Subrat K. Das, and Kalpataru Pradhan

Phys. Rev. B 108, 235111 (2023) - Published 4 December, 2023

Influence of magnetism, strain, and pressure on the band topology of EuCd2As2

Adrian Valadkhani, Mikel Iraola, Axel Fünfhaus, Young-Joon Song, Libor Šmejkal, Jairo Sinova, and Roser Valentí

Phys. Rev. B 108, 235113 (2023) - Published 4 December, 2023

Quasi-two-dimensional electron gas and weak antilocalization at the interface of SrTaO3/KTaO3 heterostructures

Xiaoyu Zhang, Zhentao Pang, Chenghao Yin, Mingyuan Yan, Yang-Yang Lv, Yu Deng, and Shan-Tao Zhang

Phys. Rev. B 108, 235114 (2023) - Published 4 December, 2023

Fermi surface topology and electronic transport properties of chiral crystal NbGe2 with strong electron-phonon interaction

Yoshiki J. Sato, Ai Nakamura, Rei Nishinakayama, Ryuji Okazaki, Hisatomo Harima, and Dai Aoki

Phys. Rev. B 108, 235115 (2023) - Published 4 December, 2023

Dimensional reduction of the Luttinger-Ward functional for spin-degenerate D-dimensional electron gases

Dmitry Miserev, Jelena Klinovaja, and Daniel Loss

Phys. Rev. B 108, 235116 (2023) - Published 4 December, 2023

Importance of nonuniform Brillouin zone sampling for ab initio Bethe-Salpeter equation calculations of exciton binding energies in crystalline solids

Antonios M. Alvertis, Aurélie Champagne, Mauro Del Ben, Felipe H. da Jornada, Diana Y. Qiu, Marina R. Filip, and Jeffrey B. Neaton

Phys. Rev. B 108, 235117 (2023) - Published 4 December, 2023

Excitons in solids often reside in a narrow region of reciprocal space. Yet, it is standard for first-principles exciton calculations to sample the entire Brillouin zone uniformly, at great computational cost and resulting in underconverged exciton binding energies. Here, the authors demonstrate that a straightforward-to-implement nonuniform sampling approach yields highly converged exciton binding energies, which can significantly differ from previous best theoretical estimates, at a fraction of the computational expense of uniform sampling approaches. This will enable the prediction of exciton binding energies of increasingly complex materials.

Dissipative Callan-Harvey mechanism in 2+1-dimensional Dirac system: Fate of edge states along a domain wall

C. X. Zhang, M. Ulybyshev, C. Northe, and E. M. Hankiewicz

Phys. Rev. B 108, 235118 (2023) - Published 4 December, 2023

Honeycomb antidot artificial lattice as a prototypical correlated Dirac fermion system

A. Biborski, M. Zegrodnik, P. Wójcik, and M. P. Nowak

Phys. Rev. B 108, 235119 (2023) - Published 4 December, 2023

Twisted bilayer graphene at charge neutrality: Competing orders of SU(4) Dirac fermions

Nikolaos Parthenios and Laura Classen

Phys. Rev. B 108, 235120 (2023) - Published 5 December, 2023

Modular transformation and anyonic statistics of multicomponent fractional quantum Hall states

Liangdong Hu, Zhao Liu, and W. Zhu

Phys. Rev. B 108, 235121 (2023) - Published 5 December, 2023

Phase transitions of LaMnO3 and SrRuO3 from DFT+U based machine learning force fields simulations

Thies Jansen, Geert Brocks, and Menno Bokdam

Phys. Rev. B 108, 235122 (2023) - Published 5 December, 2023

Conformal four-point correlators of the three-dimensional Ising transition via the quantum fuzzy sphere

Chao Han, Liangdong Hu, W. Zhu, and Yin-Chen He

Phys. Rev. B 108, 235123 (2023) - Published 6 December, 2023

Shear Bernstein modes in a two-dimensional electron liquid

A. N. Afanasiev, P. S. Alekseev, A. A. Greshnov, and M. A. Semina

Phys. Rev. B 108, 235124 (2023) - Published 6 December, 2023

Optical conductivity of a metal near an Ising-nematic quantum critical point

Songci Li, Prachi Sharma, Alex Levchenko, and Dmitrii L. Maslov

Phys. Rev. B 108, 235125 (2023) - Published 7 December, 2023

Quantum criticality on a compressible lattice

Saheli Sarkar, Lars Franke, Nikolas Grivas, and Markus Garst

Phys. Rev. B 108, 235126 (2023) - Published 8 December, 2023

Pb9Cu(PO4)6(OH)2: Phonon bands, localized flat-band magnetism, models, and chemical analysis

Yi Jiang, Scott B. Lee, Jonah Herzog-Arbeitman, Jiabin Yu, Xiaolong Feng, Haoyu Hu, Dumitru Călugăru, Parker S. Brodale, Eoghan L. Gormley, Maia G. Vergniory, Claudia Felser, S. Blanco-Canosa, Christopher H. Hendon, Leslie M. Schoop, and B. Andrei Bernevig

Phys. Rev. B 108, 235127 (2023) - Published 8 December, 2023

Doped lead apatite (LK-99) has been proposed as a candidate ambient temperature and pressure superconductor, a dramatic claim requiring careful investigation from experiment and theory. Here, the authors synthesize an LK-99 sample and find a multiphase, transparent material that does not support high-temperature superconductivity. This is in agreement with ab initio calculations here that suggest the copper dopant does not meaningfully enter the structure and that the flat bands they generate at the Fermi level are largely unhybridized, with no quantum geometry to support a superfluid state.

Ground-state order in magic-angle graphene at filling ν=3: A full-scale density matrix renormalization group study

Tianle Wang, Daniel E. Parker, Tomohiro Soejima (副島智大), Johannes Hauschild, Sajant Anand, Nick Bultinck, and Michael P. Zaletel

Phys. Rev. B 108, 235128 (2023) - Published 8 December, 2023

Angle-resolved photoemission study of V-based kagome metal CsV8Sb12

Huan Ma, Guohua Liu, Liu Yang, Qiangwei Yin, Pengfei Ding, Zhonghao Liu, Hong-Yan Lu, Hechang Lei, and Shancai Wang

Phys. Rev. B 108, 235129 (2023) - Published 8 December, 2023

Metallic conductivity in Na-deficient structural domain walls in the spin-orbit Mott insulator Na2IrO3

Franziska A. Breitner, Julian Kaiser, Anton Jesche, and Philipp Gegenwart

Phys. Rev. B 108, 235130 (2023) - Published 8 December, 2023

Strongly interacting two-dimensional electron systems: Evidence for enhanced one-dimensional edge-channel coupling

C. Marty, C. Reichl, S. Parolo, I. Grandt-Ionita, J. Scharnetzky, W. Dietsche, and W. Wegscheider

Phys. Rev. B 108, 235131 (2023) - Published 11 December, 2023

Dynamical exchange-correlation potential formalism for spin-12 Heisenberg and Hubbard chains: The antiferromagnetic/half-filled case

Zhen Zhao, Claudio Verdozzi, and Ferdi Aryasetiawan

Phys. Rev. B 108, 235132 (2023) - Published 11 December, 2023

Counting interacting electrons in one dimension

O. Kashuba, T. L. Schmidt, F. Hassler, A. Haller, and R.-P. Riwar

Phys. Rev. B 108, 235133 (2023) - Published 11 December, 2023

Particularities of polaron formation in the extended Holstein model with next nearest neighbor transfer

Monodeep Chakraborty, Jayita Chatterjee, and Holger Fehske

Phys. Rev. B 108, 235134 (2023) - Published 11 December, 2023

Correlated insulator in two Coulomb-coupled quantum wires

Yang-Zhi Chou and Sankar Das Sarma

Phys. Rev. B 108, 235135 (2023) - Published 11 December, 2023

Role of effective mass anisotropy in realizing a hybrid nodal-line fermion state

Bikash Patra, Rahul Verma, Shin-Ming Huang, and Bahadur Singh

Phys. Rev. B 108, 235136 (2023) - Published 12 December, 2023

Spin-valley entangled quantum Hall states in graphene

Nikolaos Stefanidis and Inti Sodemann Villadiego

Phys. Rev. B 108, 235137 (2023) - Published 12 December, 2023

Role of Coulomb interactions on the electronic properties of monolayer NiX2 (X=S,Se): A DFT+U+V study

Sergio Bravo, P. A. Orellana, and L. Rosales

Phys. Rev. B 108, 235138 (2023) - Published 12 December, 2023

Kardar-Parisi-Zhang scaling in the Hubbard model

Cătălin Paşcu Moca, Miklós Antal Werner, Angelo Valli, Tomaž Prosen, and Gergely Zaránd

Phys. Rev. B 108, 235139 (2023) - Published 12 December, 2023

Mott insulating low thermal expansion perovskite TiF3

Donal Sheets, Kaitlin Lyszak, Menka Jain, Gayanath W. Fernando, Ilya Sochnikov, Jacob Franklin, Jason N. Hancock, and R. Matthias Geilhufe

Phys. Rev. B 108, 235140 (2023) - Published 13 December, 2023

A class of transition metal trifluorides harbors a structural quantum phase transition, above which extremely large negative thermal expansion (NTE) is shown in ScF3. A related material (TiF3) has reported a much weaker effect and attempts have been made to describe the differing thermal expansion behavior of this system using uncorrelated electronic structure calculations. Here, the authors use a combination of infrared reflectivity, ac magnetometry, and density functional theory calculations to demonstrate that in fact that TiF3 is a strongly correlated electron system, where uncorrelated approaches are ineffective. The work concludes that Mott physics is an important consideration in describing the evolution of the unusual NTE effect in these systems.

Revealing microcanonical phases and phase transitions of strongly correlated systems via time-averaged classical shadows

Gaurav Gyawali, Mabrur Ahmed, Eric W. Aspling, Luke Ellert-Beck, and Michael J. Lawler

Phys. Rev. B 108, 235141 (2023) - Published 13 December, 2023

Universal conductivity at a two-dimensional superconductor-insulator transition: The effects of quenched disorder and Coulomb interaction

Chao-Jung Lee and Michael Mulligan

Phys. Rev. B 108, 235142 (2023) - Published 13 December, 2023

Stochastic pole expansion method for analytic continuation of the Green's function

Li Huang and Shuang Liang

Phys. Rev. B 108, 235143 (2023) - Published 13 December, 2023

One-half topological number in entangled quantum physics

Karyn Le Hur

Phys. Rev. B 108, 235144 (2023) - Published 13 December, 2023

Electronic structure of the surface states of the Zr3SnC2 MAX phase

Takahiro Ito, Thierry Ouisse, Manaya Mita, Kiyohisa Tanaka, Laurent Jouffret, Hanna Pazniak, and Serge Quessada

Phys. Rev. B 108, 235145 (2023) - Published 13 December, 2023

Anomalous scaling corrections and quantum phase diagram of the Heisenberg antiferromagnet on the spatially anisotropic honeycomb lattice

Alexander Sushchyev and Stefan Wessel

Phys. Rev. B 108, 235146 (2023) - Published 14 December, 2023

Intrinsic chiral topological superconductor thin films

Xi Luo, Yu-Ge Chen, Ziqiang Wang, and Yue Yu

Phys. Rev. B 108, 235147 (2023) - Published 14 December, 2023

Tailoring higher-order van Hove singularities in non-Hermitian interface systems via Floquet engineering

Ayan Banerjee, Debashree Chowdhury, and Awadhesh Narayan

Phys. Rev. B 108, 235148 (2023) - Published 14 December, 2023

Bose metal in an exactly solvable model with infinite-range Hatsugai-Kohmoto interaction

Wei-Wei Yang, Hong-Gang Luo, and Yin Zhong

Phys. Rev. B 108, 235149 (2023) - Published 14 December, 2023

Many-body multipole index and bulk-boundary correspondence

Yasuhiro Tada and Masaki Oshikawa

Phys. Rev. B 108, 235150 (2023) - Published 15 December, 2023

Case for polar uranium octupoles in cubic U2N3

S. W. Lovesey

Phys. Rev. B 108, 235151 (2023) - Published 15 December, 2023

Numerical simulations of the magnetodielectric response in Ising pyrochlores

T. Vignau Costa, S. A. Grigera, and R. A. Borzi

Phys. Rev. B 108, 235152 (2023) - Published 15 December, 2023

Competition between fractional quantum Hall liquid and electron solid phases in the Landau levels of multilayer graphene

Rakesh K. Dora and Ajit C. Balram

Phys. Rev. B 108, 235153 (2023) - Published 18 December, 2023

Spontaneous breaking of time-reversal symmetry and time-crystal states in chiral atomic systems

Mário G. Silveirinha, Hugo Terças, and Mauro Antezza

Phys. Rev. B 108, 235154 (2023) - Published 18 December, 2023

Half-integer spin systems are characterized by a degenerate ground state. Here, the authors show that the chiral interactions of a spin-½ qubit with the vacuum fluctuations may spontaneously break both the time-reversal and the time-translation symmetries. In the former case, the electron spin becomes anchored along some particular direction of space determined by a geometrical symmetry. In contrast, the latter situation occurs when the intrinsic spin magnetic moment undergoes a cyclic oscillation in the ground state, realizing a time crystal.

Shubnikov–de Haas oscillations and planar Hall effect in HfTe2

Qixuan Li, Gangjian Jin, Nannan Tang, Bin Wang, Bing Shen, Donghui Guo, Dingyong Zhong, Huakun Zuo, and Huichao Wang

Phys. Rev. B 108, 235155 (2023) - Published 18 December, 2023

Crossover from Fermi arc to full Fermi surface

Jia-Xin Zhang and Zheng-Yu Weng

Phys. Rev. B 108, 235156 (2023) - Published 18 December, 2023

Excitonic phases in a spatially separated electron-hole ladder model

DinhDuy Vu and Sankar Das Sarma

Phys. Rev. B 108, 235158 (2023) - Published 19 December, 2023

Deep Charge: Deep learning model of electron density from a one-shot density functional theory calculation

Taoyuze Lv, Zhicheng Zhong, Yuhang Liang, Feng Li, Jun Huang, and Rongkun Zheng

Phys. Rev. B 108, 235159 (2023) - Published 20 December, 2023

Unconventional photoinduced charge density wave dynamics in 2HNbSe2

R. Venturini, A. Sarkar, P. Sutar, Z. Jagličić, Y. Vaskivskyi, E. Goreshnik, D. Mihailovic, and T. Mertelj

Phys. Rev. B 108, 235160 (2023) - Published 20 December, 2023

Using transient optical spectroscopy, the authors investigate ultrafast optical suppression and recovery of the charge density wave (CDW) in 2H-NbSe2, a layered material where CDW and superconductivity coexist. The suppression is marked by the absence of coherent amplitude mode oscillations and a relatively slow, picosecond timescale, different from most typical CDW materials. The suppression of the CDW is only weakly nonthermal and is characterized by an excitation of a large number of phonon degrees of freedom. The recovery of the CDW phase is dominated by slow phonon diffusion.

Accurate and efficient treatment of spin-orbit coupling via second variation employing local orbitals

Cecilia Vona, Sven Lubeck, Hannah Kleine, Andris Gulans, and Claudia Draxl

Phys. Rev. B 108, 235161 (2023) - Published 20 December, 2023

Flavor-wave theory with quasiparticle damping at finite temperatures: Application to chiral edge modes in the Kitaev model

Shinnosuke Koyama and Joji Nasu

Phys. Rev. B 108, 235162 (2023) - Published 20 December, 2023

Magnetism and metal-insulator transitions in the anisotropic kagome lattice

Lucas O. Lima, Andressa R. Medeiros-Silva, Raimundo R. dos Santos, Thereza Paiva, and Natanael C. Costa

Phys. Rev. B 108, 235163 (2023) - Published 20 December, 2023

Spiral band structure hidden in the bulk chiral crystal NbSi2

Cheng Zhang, Tatsuya Shishidou, Ryoga Amano, Koji Miyamoto, Taisei Sayo, Chiho Shimada, Yusuke Kousaka, Michael Weinert, Yoshihiko Togawa, and Taichi Okuda

Phys. Rev. B 108, 235164 (2023) - Published 21 December, 2023

Understanding band gaps of lanthanide niobates via first-principles calculations

Haoming Xu, Jiajia Cai, Weiguo Jing, Xiantao Wei, and Chang-Kui Duan

Phys. Rev. B 108, 235165 (2023) - Published 21 December, 2023

Twist- and gate-tunable proximity spin-orbit coupling, spin relaxation anisotropy, and charge-to-spin conversion in heterostructures of graphene and transition metal dichalcogenides

Klaus Zollner, Simão M. João, Branislav K. Nikolić, and Jaroslav Fabian

Phys. Rev. B 108, 235166 (2023) - Published 22 December, 2023

Proximity effects in van der Waals heterostructures offer controllable ways to tailor the electronic band structure of adjacent 2D materials. Here, the authors perform extensive first-principles calculations, to reveal the impact of twisting, gating, stacking, interlayer distance, and encapsulation, on the spin-orbit proximitized Dirac bands in graphene/transition metal dichalcogenide heterostructures. Furthermore, the authors make specific predictions for experimentally measurable quantities, such as charge-to-spin conversion efficiency. The results highlight the enormous tunability potential of proximity-induced phenomena in van der Waals heterostructures.

Absence of localized 5d1 electrons in KTaO3 interface superconductors

Xinqiang Cai, Jungho Kim, Leonardo Martinelli, Piero Florio, Matteo Corti, Weiliang Qiao, Yanqiu Sun, Jiasen Niu, Quentin Faure, Christoph J. Sahle, Qingzheng Qiu, Qian Xiao, Xiquan Zheng, Qizhi Li, Changwei Zou, Xinyi Jiang, Giacomo Ghiringhelli, Wei Han, Yanwu Xie, Yi Lu, Marco Moretti Sala, and Yingying Peng

Phys. Rev. B 108, 235167 (2023) - Published 22 December, 2023

Imposing correct jellium response is key to predict the density response by orbital-free DFT

Zhandos A. Moldabekov, Xuecheng Shao, Michele Pavanello, Jan Vorberger, Frank Graziani, and Tobias Dornheim

Phys. Rev. B 108, 235168 (2023) - Published 22 December, 2023

Nematic order in topological Sachdev-Ye-Kitaev models

Andrew Hardy, Anjishnu Bose, and Arun Paramekanti

Phys. Rev. B 108, 235169 (2023) - Published 26 December, 2023

Understanding the role of Hubbard corrections in the rhombohedral phase of BaTiO3

G. Gebreyesus, Lorenzo Bastonero, Michele Kotiuga, Nicola Marzari, and Iurii Timrov

Phys. Rev. B 108, 235171 (2023) - Published 27 December, 2023

Shear viscosity expression for a graphene system in relaxation time approximation

Cho Win Aung, Thandar Zaw Win, Gaurav Khandal, and Sabyasachi Ghosh

Phys. Rev. B 108, 235172 (2023) - Published 27 December, 2023

Strange metal behavior from incoherent carriers scattered by local moments

Sergio Ciuchi and Simone Fratini

Phys. Rev. B 108, 235173 (2023) - Published 27 December, 2023

Multiple phase transitions and the effect of disorder in the locally noncentrosymmetric ferromagnet URhGe2

Daniel Gnida, Maria Szlawska, and Marek Daszkiewicz

Phys. Rev. B 108, 235174 (2023) - Published 29 December, 2023

Semiconductors I: bulk

How does hydrogen transform into shallow donors in silicon?

Akira Kiyoi and Takahide Umeda

Phys. Rev. B 108, 235201 (2023) - Published 5 December, 2023

Understanding phonon thermal transport in twisted bilayer graphene

Shahid Ahmed, Shadab Alam, and Ankit Jain

Phys. Rev. B 108, 235202 (2023) - Published 11 December, 2023

Rattling vibrations and occupied antibonding states yield intrinsically low thermal conductivity of the Zintl-phase compound KSrBi

Congying Wei, Zhenzhen Feng, Yuli Yan, Gaofeng Zhao, Yuhao Fu, and David J. Singh

Phys. Rev. B 108, 235203 (2023) - Published 11 December, 2023

Local field of spin-spin interactions in the nuclear spin system of n-GaAs

V. M. Litvyak, R. V. Cherbunin, V. K. Kalevich, and K. V. Kavokin

Phys. Rev. B 108, 235204 (2023) - Published 12 December, 2023

Many-particle simulation of Rydberg exciton interaction

Florian Morawetz, Stefan Scheel, Julian Heckötter, and Marc Aßmann

Phys. Rev. B 108, 235205 (2023) - Published 14 December, 2023

Microscopic theory of the magnetic susceptibility of insulators

Alistair H. Duff, Aidan Lau, and J. E. Sipe

Phys. Rev. B 108, 235206 (2023) - Published 19 December, 2023

Hot-hole transport and noise phenomena in silicon at cryogenic temperatures from first principles

David S. Catherall and Austin J. Minnich

Phys. Rev. B 108, 235207 (2023) - Published 19 December, 2023

Charge-state stability of color centers in wide band gap semiconductors

Rodrick Kuate Defo, Alejandro W. Rodriguez, and Steven L. Richardson

Phys. Rev. B 108, 235208 (2023) - Published 20 December, 2023

Photocurrents in bulk tellurium

M. D. Moldavskaya, L. E. Golub, S. N. Danilov, V. V. Bel'kov, D. Weiss, and S. D. Ganichev

Phys. Rev. B 108, 235209 (2023) - Published 21 December, 2023

Wigner-Seitz truncated time-dependent density functional theory approach for the calculation of exciton binding energies in solids

M. Arruabarrena, A. Leonardo, and A. Ayuela

Phys. Rev. B 108, 235210 (2023) - Published 22 December, 2023

Complete topological phase diagram and realization of minimum Weyl nodes in a sheared chiral crystal of elemental tellurium

Shuai Fan, Botao Fu, Da-Shuai Ma, and Rui Wang

Phys. Rev. B 108, 235211 (2023) - Published 26 December, 2023

Neutralization of impurities by continuous-wave excitation of high-n Rydberg excitons

J. Heckötter, B. Panda, K. Brägelmann, M. Harati, and M. Aßmann

Phys. Rev. B 108, 235212 (2023) - Published 26 December, 2023

Rydberg excitons are electron-hole pairs excited to high principle quantum numbers (n), that can be addressed in the semiconductor Cu2O. Embedded in a crystalline environment, the highest Rydberg states typically suffer from the presence electric stray fields induced by charged impurities. Here, the authors show a technique to neutralize these impurities by the excitation of Rydberg excitons. The result is an overall improvement of the absorption spectrum’s quality in terms of increased oscillator strengths and narrower linewidths, approaching the Fourier limit.

Acoustic phonon softening enhances phonon scattering in Zintl-phase II-I-V compounds

Shao-Fei Wang, Jun-Rong Zhang, and Fang-Wei Wang

Phys. Rev. B 108, 235213 (2023) - Published 28 December, 2023

Semiconductors II: surfaces, interfaces, microstructures, and related topics

Magnetic phases of bilayer quantum-dot Hubbard model plaquettes

Donovan Buterakos and Sankar Das Sarma

Phys. Rev. B 108, 235301 (2023) - Published 4 December, 2023

Symmetry-enforced type-II Weyl phonons and hybrid Weyl nodal-line phonons in P4¯m2-carbon

Qing-Bo Liu, Xiang-Feng Yang, Zhe-Qi Wang, Ziyang Yu, Lun Xiong, and Hua-Hua Fu

Phys. Rev. B 108, 235302 (2023) - Published 4 December, 2023

Sign reversal of the effective Hall coefficient in laminates

Christian Kern

Phys. Rev. B 108, 235303 (2023) - Published 5 December, 2023

Origin of nonhydrogenic hole transition in boron-doped silicon: An STM/S study

So-Dam Sohn, Ja-Yong Koo, and Daejin Eom

Phys. Rev. B 108, 235304 (2023) - Published 6 December, 2023

Topological enhancement of exciton-polariton coherence with non-Hermitian morphing

Ruiqi Bao, Huawen Xu, Wouter Verstraelen, and Timothy C. H. Liew

Phys. Rev. B 108, 235305 (2023) - Published 7 December, 2023

Electronic g factor and tunable spin-orbit coupling in a gate-defined InSbAs quantum dot

S. Metti, C. Thomas, and M. J. Manfra

Phys. Rev. B 108, 235306 (2023) - Published 11 December, 2023

Molecular OR and AND logic gates: A theoretical proposal

M. Niţă, M. Ţolea, and D. C. Marinescu

Phys. Rev. B 108, 235307 (2023) - Published 11 December, 2023

Single-electron routing in a silicon quantum-dot array

Takeru Utsugi, Takuma Kuno, Noriyuki Lee, Ryuta Tsuchiya, Toshiyuki Mine, Digh Hisamoto, Shinichi Saito, and Hiroyuki Mizuno

Phys. Rev. B 108, 235308 (2023) - Published 11 December, 2023

Free electron transport on two-dimensional quantum dot arrays has the potential to dramatically improve the efficiency of quantum computing implemented on a solid-state device. Here, the authors have successfully controlled the paths of electrons on a silicon quantum dot array using a single-electron router. They perform proof-of-principle experiments for single-electron routing, which selectively transports individual electrons along a desired path, and develop the theory for estimating a minimum error rate of the routing.

Dynamical simulation of the injection of vortices into a Majorana edge mode

I. M. Flór, A. Donís-Vela, C. W. J. Beenakker, and G. Lemut

Phys. Rev. B 108, 235309 (2023) - Published 13 December, 2023

Cubic anisotropy of hole Zeeman splitting in semiconductor nanocrystals

M. A. Semina, A. A. Golovatenko, and A. V. Rodina

Phys. Rev. B 108, 235310 (2023) - Published 15 December, 2023

Defect-driven tunable electronic and optical properties of two-dimensional silicon carbide

Arushi Singh, Vikram Mahamiya, and Alok Shukla

Phys. Rev. B 108, 235311 (2023) - Published 15 December, 2023

Room temperature coherent control of a single solid-state spin under anti-Stokes excitation

Wu-Xi Lin, Jun-Feng Wang, Qiang Li, Ji-Yang Zhou, Zhen-Xuan He, Zhi-He Hao, Hao Li, Li-Xing You, Jin-Shi Xu, Chuan-Feng Li, and Guang-Can Guo

Phys. Rev. B 108, 235312 (2023) - Published 26 December, 2023

Optical and thermal characterization of a group-III nitride semiconductor membrane by microphotoluminescence spectroscopy and Raman thermometry

Mahmoud Elhajhasan, Wilken Seemann, Katharina Dudde, Daniel Vaske, Gordon Callsen, Ian Rousseau, Thomas F. K. Weatherley, Jean-François Carlin, Raphaël Butté, Nicolas Grandjean, Nakib H. Protik, and Giuseppe Romano

Phys. Rev. B 108, 235313 (2023) - Published 29 December, 2023

Strong transverse magneto-optical Kerr effect at normal incidence based on hybrid bound states in the continuum

An Chang, YanLin Zhu, Shulei Li, Lei Chen, Jindong Chen, Yi Zhou, Gaofeng Liang, Zhongquan Wen, Jin Xiang, and Gang Chen

Phys. Rev. B 108, 235314 (2023) - Published 29 December, 2023

Surface physics, nanoscale physics, low-dimensional systems

Gate voltage induced injection and shift currents in AA- and AB-stacked bilayer graphene

Ze Zheng, Kainan Chang, and Jin Luo Cheng

Phys. Rev. B 108, 235401 (2023) - Published 4 December, 2023

Inducing quantum phase transitions in nontopological insulators via atomic control of substructural elements

Thomas K. Reid, S. Pamir Alpay, Alexander V. Balatsky, and Sanjeev K. Nayak

Phys. Rev. B 108, 235402 (2023) - Published 4 December, 2023

Registry-dependent potential energy and lattice corrugation of twisted bilayer graphene from quantum Monte Carlo

Kittithat Krongchon, Tawfiqur Rakib, Shivesh Pathak, Elif Ertekin, Harley T. Johnson, and Lucas K. Wagner

Phys. Rev. B 108, 235403 (2023) - Published 4 December, 2023

Spin-dependent edge states in two-dimensional Dirac materials with a flat band

Li-Li Ye, Chen-Di Han, and Ying-Cheng Lai

Phys. Rev. B 108, 235404 (2023) - Published 4 December, 2023

Mesoscopic heat multiplier and fractionalizer

Florian Stäbler and Eugene Sukhorukov

Phys. Rev. B 108, 235405 (2023) - Published 6 December, 2023

Optical conductivity of a topological system driven using a realistic pulse

Ranjani Seshadri and T. Pereg-Barnea

Phys. Rev. B 108, 235406 (2023) - Published 6 December, 2023

Visualizing the merger of tunably coupled graphene quantum dots

Daniel Walkup, Fereshte Ghahari, Steven R. Blankenship, Kenji Watanabe, Takashi Taniguchi, Nikolai B. Zhitenev, and Joseph A. Stroscio

Phys. Rev. B 108, 235407 (2023) - Published 6 December, 2023

The ability to pattern and simultaneously study a nanometer-scale potential landscape within hBN-based graphene devices using scanning tunneling microscopy (STM) opens a path for detailed investigation of model quantum systems. Here, the authors create a double-well potential and applied a strong magnetic field to induce Landau levels and the formation of quantum dots with single-electron charging characteristics. The system can be broadly tuned form weakly coupled dots to combined single dot while STM provides multiple measurement and manipulation modalities.

Epitaxial growth and atomic-scale study of type-II Dirac semimetal 1TNiTe2 film

Mingqiang Ren, Shuze Wang, Fanqi Meng, Lixuan Wei, Qinghua Zhang, Lin Gu, Can-Li Song, Xu-Cun Ma, and Qi-Kun Xue

Phys. Rev. B 108, 235408 (2023) - Published 6 December, 2023

High-throughput predictions of two-dimensional dielectrics with first-principles calculations

Gege Du, Chunhui Li, Lei Shan, and Long Cheng

Phys. Rev. B 108, 235409 (2023) - Published 7 December, 2023

Symmetry breaking via alloy disorder to explain radiative Auger transitions in self-assembled quantum dots

Krzysztof Gawarecki, Clemens Spinnler, Liang Zhai, Giang N. Nguyen, Arne Ludwig, Richard J. Warburton, Matthias C. Löbl, Doris E. Reiter, and Paweł Machnikowski

Phys. Rev. B 108, 235410 (2023) - Published 7 December, 2023

Magnetic-field periodic quantum Sondheimer oscillations in thin-film graphite

Toshihiro Taen, Andhika Kiswandhi, and Toshihito Osada

Phys. Rev. B 108, 235411 (2023) - Published 7 December, 2023

Conventional quantum oscillations are periodic in an inverse of magnetic fields. Here, the authors observe magnetic-field periodic oscillations in a graphite thin film under magnetic fields where only two Landau levels remain. At this quasiquantum limit, they propose a new quantum oscillation mechanism: the quantum Sondheimer effect. The oscillations arise from the formation of the resonant modes periodically appearing in the magnetic fields. The period is inversely proportional to the film thickness, demonstrating its out-of-plane electron motion nature.

Klein-bottle quadrupole insulators and Dirac semimetals

Chang-An Li, Junsong Sun, Song-Bo Zhang, Huaiming Guo, and Björn Trauzettel

Phys. Rev. B 108, 235412 (2023) - Published 8 December, 2023

ENZ medium triggered collapse of Fano resonances and emergence of generalized nonreciprocal Kerker effects by subwavelength hybrid meta-atoms

Yiyun Chen, Yaping Zhang, Qingtao Ba, Lingzhong Zhao, Jiafei He, Lin Zhang, Qilin Luo, and Shiyang Liu

Phys. Rev. B 108, 235413 (2023) - Published 8 December, 2023

Quantum electronic circuits for multicritical Ising models

Ananda Roy

Phys. Rev. B 108, 235414 (2023) - Published 11 December, 2023

Epitaxial two-dimensional membranes under intrinsic and extrinsic strains

Nicolas Rougemaille and Johann Coraux

Phys. Rev. B 108, 235415 (2023) - Published 11 December, 2023

In situ tuning of dynamical Coulomb blockade on Andreev bound states in hybrid nanowire devices

Shan Zhang, Zhichuan Wang, Dong Pan, Zhaoyu Wang, Zonglin Li, Zitong Zhang, Yichun Gao, Zhan Cao, Gu Zhang, Lei Liu, Lianjun Wen, Ran Zhuo, Dong E. Liu, Ke He, Runan Shang, Jianhua Zhao, and Hao Zhang

Phys. Rev. B 108, 235416 (2023) - Published 12 December, 2023

Schrieffer-Wolff transformation for non-Hermitian systems: Application for PT-symmetric circuit QED

Grigory A. Starkov, Mikhail V. Fistul, and Ilya M. Eremin

Phys. Rev. B 108, 235417 (2023) - Published 12 December, 2023

Flat bands and electronic localization in twisted bilayer graphene nanoribbons

Elias Andrade, Pierre A. Pantaleón, Francisco Guinea, and Gerardo G. Naumis

Phys. Rev. B 108, 235418 (2023) - Published 13 December, 2023

In an infinite twisted bilayer graphene lattice, flat bands emerge, representing electrons localized at the AA stacking regions. This study investigates the behavior of these bands when dealing with incomplete moiré supercells in twisted bilayer graphene nanoribbons. The findings reveal a transition from dispersive to flat bands near charge neutrality as the supercell completeness varies. Moreover, it is observed that the microscopic edges can influence the energy of states localized at the AA regions near the borders.

Large contributions from optical phonons to thermal transport in hexagonal carbon-boron-nitrogen monolayers

Xue-Kun Chen (陈学坤), Yue Zhang (张越), Qing-Qing Luo (罗青清), Xue Chen (陈雪), Pin-Zhen Jia (贾聘真), and Wu-Xing Zhou (周五星)

Phys. Rev. B 108, 235420 (2023) - Published 13 December, 2023

Stochastic model of noise for a quantum thermal transistor

Uthpala N. Ekanayake, Sarath D. Gunapala, and Malin Premaratne

Phys. Rev. B 108, 235421 (2023) - Published 14 December, 2023

Steady-state edge burst: From free-particle systems to interaction-induced phenomena

Yu-Min Hu, Wen-Tan Xue, Fei Song, and Zhong Wang

Phys. Rev. B 108, 235422 (2023) - Published 14 December, 2023

Large in-plane negative piezoelectricity and giant nonlinear optical susceptibility in elementary ferroelectric monolayers

Ziwen Wang and Shuai Dong

Phys. Rev. B 108, 235423 (2023) - Published 15 December, 2023

Quantum electrodynamical density functional theory for generalized Dicke model

D. Novokreschenov, A. Kudlis, I. Iorsh, and I. V. Tokatly

Phys. Rev. B 108, 235424 (2023) - Published 18 December, 2023

Valley filtering in black phosphorus nanofilms under a magnetic-electric barrier

Dewei Chen and Feng Zhai

Phys. Rev. B 108, 235425 (2023) - Published 18 December, 2023

Modulation of interface modes for resonance-induced enhancement of the interfacial thermal conductance in pillar-based Si/Ge nanowires

Yingzhou Liu, Yinong Liu, Jincheng Yue, Long Xiong, Lei-Lei Nian, and Shiqian Hu

Phys. Rev. B 108, 235426 (2023) - Published 19 December, 2023

Waiting time fluctuations in quasi-one-dimensional disordered conductors

F. Schulz and M. Albert

Phys. Rev. B 108, 235427 (2023) - Published 19 December, 2023

Topological information device operating at the Landauer limit

A. Mert Bozkurt, Alexander Brinkman, and İnanç Adagideli

Phys. Rev. B 108, 235428 (2023) - Published 20 December, 2023

Electrical gate assisted optical multisubband spin-orbit control in GaInAs/AlInAs quantum wells with tilted nonresonant laser fields

Xue Li, Yongmei Li, Hao Yang, Wen Liu, Hailong Wang, Ning Hao, Jiyong Fu, and Ping Zhang

Phys. Rev. B 108, 235429 (2023) - Published 21 December, 2023

Van der Waals chain: A simple model for Casimir forces in dielectrics

Helmut Hörner, Lukas M. Rachbauer, Stefan Rotter, and Ulf Leonhardt

Phys. Rev. B 108, 235430 (2023) - Published 21 December, 2023

Valley quantum Hall effect meets strain: Subgap formation and large increment of the Hall conductivity

A. Sinner, G. Engel, A. Ernst, and V. A. Stephanovich

Phys. Rev. B 108, 235431 (2023) - Published 22 December, 2023

Probing the edge states of Chern insulators using microwave impedance microscopy

Taige Wang, Chen Wu, Masataka Mogi, Minoru Kawamura, Yoshinori Tokura, Zhi-Xun Shen, Yi–Zhuang You, and Monica T. Allen

Phys. Rev. B 108, 235432 (2023) - Published 29 December, 2023

Quantum anomalous Hall (QAH) insulators, known for their topological 1D conducting edge states, are a focus of many recent quantum material studies. Here, the authors overcome the challenges in direct imaging and analysis of edge states by exploiting the power of microwave impedance microscopy (MIM). By analyzing the resonance pattern of 1D edge plasmon excitations, MIM can discern true topological edge states from potential trivial ones. This approach significantly advances our understanding of QAH insulators and their topological edge states.

ERRATA

Erratum: Geometric phases of mixed quantum states: A comparative study of interferometric and Uhlmann phases [Phys. Rev. B 107, 165415 (2023)]

Xu-Yang Hou, Xin Wang, Zheng Zhou, Hao Guo, and Chih-Chun Chien

Phys. Rev. B 108, 239901 (2023) - Published 4 December, 2023

Erratum: Maximizing intrinsic anomalous Hall effect by controlling the Fermi level in simple Weyl semimetal films [Phys. Rev. B 105, 201101 (2022)]

Mizuki Ohno, Susumu Minami, Yusuke Nakazawa, Shin Sato, Markus Kriener, Ryotaro Arita, Masashi Kawasaki, and Masaki Uchida

Phys. Rev. B 108, 239902 (2023) - Published 11 December, 2023

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