Recent Articles

Cosmological gravitational particle production and its implications for cosmological relics

Edward W. Kolb and Andrew J. Long

Rev. Mod. Phys. 96, 045005 (2024) - Published 25 November, 2024

Expansion of the Universe creates the conditions for particle production solely due to the presence of gravity. This review provides a field-theoretical description of particle creation in a time-dependent background and explores the consequences of cosmological gravitational particle production for dark matter, gravitational-wave radiation, dark radiation, and the baryon asymmetry of the Universe.

New developments in the numerical conformal bootstrap

Slava Rychkov and Ning Su

Rev. Mod. Phys. 96, 045004 (2024) - Published 21 November, 2024

Conformal bootstrap has revealed itself in recent years as a powerful tool in the study of phase transitions. It has allowed the calculations of critical exponents with unprecedented accuracy in many models and it has been used to rule out some proposed second-order phase transitions. This article reviews the newest developments in conformal bootstrap and its numerical implementation.

Colloidal hard spheres: Triumphs, challenges, and mysteries

C. Patrick Royall, Patrick Charbonneau, Marjolein Dijkstra, John Russo, Frank Smallenburg, Thomas Speck, and Chantal Valeriani

Rev. Mod. Phys. 96, 045003 (2024) - Published 12 November, 2024

Hard spheres—simple particles that cannot overlap, like billiard balls—may at first glance seem to be a rather abstract model of matter. However, the development of well-controlled synthesis of suitable submicron colloids has realized hard spheres in experiment. When combined with modern light scattering and microscopy techniques to study colloidal hard spheres in reciprocal and real space, this model system has become pivotal to shedding new light on a wide range of fundamental physics, from hydrodynamics to phase transitions. This review provides a comprehensive guide to the multifaceted research on hard-sphere colloids, covering experimental, computational, and theoretical approaches both in and out of equilibrium.

PT-symmetric quantum mechanics

Carl M. Bender and Daniel W. Hook

Rev. Mod. Phys. 96, 045002 (2024) - Published 28 October, 2024

Historically, quantum mechanics is based on representing observables by Hermitian operators. All of that changed in 1998 when Bender and Boettcher showed that the spectrum of a Hamiltonian H can be real if H is PT symmetric, that is, symmetric under combined parity (space reflection) and time reversal. This has led to an explosion in theoretical and experimental research. This timely review covers the key developments in this exciting new field of physics.

The science and technology of liquid argon detectors

W. M. Bonivento and F. Terranova

Rev. Mod. Phys. 96, 045001 (2024) - Published 21 October, 2024

Liquid argon detectors have reached an unprecedented level of maturity, owing to a couple of decades of R&D and the operation of large-scale facilities in several particle and astroparticle physics laboratories. After describing the physical and chemical properties of this noble element as an active and target medium for particle detection, the review discusses the opportunities and challenges of liquid argon detectors operated as calorimeters, scintillators, and time projection chambers. A comprehensive panorama of current and future applications is provided, ranging from collider physics to accelerator neutrino beam experiments and underground facilities for the observation of rare events, also including unconventional developments in medical and applied physics.

Colloquium: Gene expression in growing cells: A biophysical primer

Ido Golding and Ariel Amir

Rev. Mod. Phys. 96, 041001 (2024) - Published 4 October, 2024

Gene expression, that is, the way in which genes encoded in the genome determine a cell’s growth and biological function, is crucially influenced by growth-related processes, such as replication of the genome and the doubling of all cellular components. Historically, this interplay has been largely ignored. This Colloquium describes recent experiments designed to shed light on this important coupling and theoretical models that take it into account.

Colloquium: Inclusions, boundaries, and disorder in scalar active matter

Omer Granek, Yariv Kafri, Mehran Kardar, Sunghan Ro, Julien Tailleur, and Alexandre Solon

Rev. Mod. Phys. 96, 031003 (2024) - Published 30 September, 2024

Active systems defy the laws of equilibrium statistical mechanics, often enjoying long-range order in situations where dead matter cannot, as required by rigorous results. These strong, long range correlations result in a preternatural sensitivity to sample boundaries and boundary conditions. This Colloquium demonstrates this phenomena by focussing on a simple model of dry scalar active matter that demonstrates the salient effects without the additional complexity of hydrodynamics.

FLASH: New intersection of physics, chemistry, biology, and cancer medicine

Marie-Catherine Vozenin, Billy W. Loo, Jr., Sami Tantawi, Peter G. Maxim, Douglas R. Spitz, Claude Bailat, and Charles L. Limoli

Rev. Mod. Phys. 96, 035002 (2024) - Published 19 September, 2024

Treating cancer with ionizing radiation has been pursued for nearly a century. A key challenge has been finding the right balance between providing enough dose to kill the cancer cells while minimizing the damage to normal ones. The discovery of the so-called FLASH effect, where short radiation bursts allow for higher lethal doses to be delivered to cancer cells while sparing healthy tissue, opens up the therapeutic window and ushers in a new era for radiation therapy. In this review multidisciplinary aspects are discussed of dose delivery, the chemistry and biology behind the effect, and readiness for clinical deployment.

Nobel Lecture: The route to attosecond pulses

Anne L’Huillier

Rev. Mod. Phys. 96, 030503 (2024) - Published 28 August, 2024

The 2023 Nobel Prize for Physics was shared by Pierre Agostini, Ferenc Krausz, and Anne L’Huillier. This paper is the text of the address given in conjunction with the award.

Nobel Lecture: Sub-atomic motions

Ferenc Krausz

Rev. Mod. Phys. 96, 030502 (2024) - Published 28 August, 2024

The 2023 Nobel Prize for Physics was shared by Pierre Agostini, Ferenc Krausz, and Anne L’Huillier. This paper is the text of the address given in conjunction with the award.

Nobel Lecture: Genesis and applications of attosecond pulse trains

Pierre Agostini

Rev. Mod. Phys. 96, 030501 (2024) - Published 28 August, 2024

The 2023 Nobel Prize for Physics was shared by Pierre Agostini, Ferenc Krausz, and Anne L’Huillier. This paper is the text of the address given in conjunction with the award.

Colloquium: Eigenvector continuation and projection-based emulators

Thomas Duguet, Andreas Ekström, Richard J. Furnstahl, Sebastian König, and Dean Lee

Rev. Mod. Phys. 96, 031002 (2024) - Published 14 August, 2024

The numerical treatment of quantum systems often requires large amounts of computing power and time. As a result, performing calculations repeatedly for different values of the input parameters is often not feasible. One remedy is using eigenvectors describing the system that are analytic functions that vary smoothly for real values of the input parameters. This allows one to replace computationally expensive calculations with emulators that project onto a reduced-basis set. This Colloquium explores a particular class of reduced-basis methods known as eigenvector continuation and its applications, with emphasis on nuclear physics.

Ultimate Rayleigh-Bénard turbulence

Detlef Lohse and Olga Shishkina

Rev. Mod. Phys. 96, 035001 (2024) - Published 6 August, 2024

Rayleigh-Bénard convection is the flow in a closed box heated from below and cooled from above. The ultimate regime of Rayleigh-Bénard turbulence occurs when the dimensionless temperature difference between the bottom and top plates is large. This review gives a comprehensive overview of the theoretical approaches to the ultimate regime and of the experimental and numerical results on the transition to this regime. These are reconciled by realizing that the transition is of non-normal–nonlinear nature, as typical for the laminar to turbulent transition in shear flow. The review also suggests experimental and numerical approaches to further understand the transition to the ultimate regime.

Colloquium: Quantum batteries

Francesco Campaioli, Stefano Gherardini, James Q. Quach, Marco Polini, and Gian Marcello Andolina

Rev. Mod. Phys. 96, 031001 (2024) - Published 9 July, 2024

Storage of energy in quantum devices is of practical relevance for applications in quantum technologies. The topic attracts attention also of a more foundational character due to the possibility that the charging power and work extraction can benefit from quantum coherence and collective effects. This Colloquium reviews theoretical concepts and experimental implementations of energy storage in quantum batteries drawing on work in quantum thermodynamics and quantum information science.

Catalysis in quantum information theory

Patryk Lipka-Bartosik, Henrik Wilming, and Nelly H. Y. Ng

Rev. Mod. Phys. 96, 025005 (2024) - Published 27 June, 2024

A branch of quantum information is concerned with transformations that are possible given certain resources: for example, quantum teleportation moves a quantum state from one place to another, aided by entanglement and classical communication. Certain other tasks are provably impossible. But, as surveyed in this review, a surprising fact is that some tasks become possible if another quantum state is present, even if this state is returned untouched at the end of the task. This “quantum catalysis” enables a large variety of interesting tasks, with applications ranging from cryptography to thermodynamics.

Neutrinos from dense environments: Flavor mechanisms, theoretical approaches, observations, and new directions

M. Cristina Volpe

Rev. Mod. Phys. 96, 025004 (2024) - Published 24 June, 2024

Neutrinos can change flavors due to their nonzero masses and mixings as well as their interactions with matter and other neutrinos. In dense astrophysical environments, such as core-collapse supernovae or neutron star mergers, the problem of neutrino flavor evolution becomes very complex. Connections to other domains such as quantum information theory have been uncovered. Understanding the neutrino flavor evolution in dense environments can shed light on the dynamics of massive star explosions and the origin of heavy elements in the Universe and is important for future observations of supernova neutrinos.

Fluorescence microscopy: A statistics-optics perspective

Mohamadreza Fazel, Kristin S. Grussmayer, Boris Ferdman, Aleksandra Radenovic, Yoav Shechtman, Jörg Enderlein, and Steve Pressé

Rev. Mod. Phys. 96, 025003 (2024) - Published 5 June, 2024

For centuries, human fascination with the living world motivated the development of tools for visualizing life’s events at the spatiotemporal scales beyond our visual range. While all optical microscopes use light to probe the object of interest, fluorescence microscopes can discern between the object and background at the molecular scale. At this scale, the stochastic properties of light are fundamental to interpreting fluorescence microscopy data. Accordingly quantitative methods that enable such interpretation necessitate stochastic perspective and the use of statistical concepts. The physical-optical principles governing the formation of fluorescent images and modeling tools interpreting these images while accounting for the stochasticity of light and measurements are reviewed.

Colloquium: Spin-orbit effects in superconducting hybrid structures

Morten Amundsen, Jacob Linder, Jason W. A. Robinson, Igor Žutić, and Niladri Banerjee

Rev. Mod. Phys. 96, 021003 (2024) - Published 28 May, 2024

In many solids, the spin-orbit interaction is only a small effect. However, in certain materials it leads to new phenomena. This Colloquium reviews the role of spin-orbit interaction in superconducting hybrid structures, where it can lead to exotic states such as spin-triplet pairing, topological superconductivity, and the superconducting diode effect. These are fundamental interest and importance for applications, including spintronics and quantum computing.

When superconductivity crosses over: From BCS to BEC

Qijin Chen, Zhiqiang Wang, Rufus Boyack, Shuolong Yang, and K. Levin

Rev. Mod. Phys. 96, 025002 (2024) - Published 23 May, 2024

The theory of unconventional superconductors continues to provide profound puzzles. The crossover between the weakly coupled Bardeen-Cooper-Schrieffer (BCS) state and the strong-pairing Bose-Einstein condensate (BEC) provides a useful perspective on how to address these questions. This paper describes a self-consistent framework for thinking about the crossover regime in between these two limits. The review discusses to what extent this BCS-BEC theory applies to a range of classes of superconducting materials including the cuprates, iron pnictides, twisted bilayer graphene, and interfacial superconductivity among others.

Editorial: Coauthor! Coauthor!

Randall D. Kamien and Daniel Ucko

Rev. Mod. Phys. 96, 020001 (2024) - Published 21 May, 2024

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