First muon acceleration using a radio-frequency accelerator
S. Bae et al.
Phys. Rev. Accel. Beams 21, 050101 (2018) - Published 18 May, 2018
Ilya Agapov, Reinhard Brinkmann, Joachim Keil, and Rainer Wanzenberg
Phys. Rev. Accel. Beams 21, 051601 (2018) - Published 29 May, 2018
The combination of round beams and noninterleaved sextupoles allows for an extremely low emittance with good dynamic aperture.
S. Bae et al.
Phys. Rev. Accel. Beams 21, 050101 (2018) - Published 18 May, 2018
R. Bartolini, C. Abraham, M. Apollonio, C. P. Bailey, M. P. Cox, A. Day, R. T. Fielder, N. P. Hammond, M. T. Heron, R. Holdsworth, J. Kay, I. P. S. Martin, S. Mhaskar, A. Miller, T. Pulampong, G. Rehm, E. C. M. Rial, A. Rose, A. Shahveh, B. Singh, A. Thomson, and R. P. Walker
Phys. Rev. Accel. Beams 21, 050701 (2018) - Published 8 May, 2018
E. Hemsing
Phys. Rev. Accel. Beams 21, 050702 (2018) - Published 25 May, 2018
Hirokazu Maesaka, Toru Hara, Kazuaki Togawa, Takahiro Inagaki, and Hitoshi Tanaka
Phys. Rev. Accel. Beams 21, 050703 (2018) - Published 29 May, 2018
R. Yang, T. Naito, S. Bai, A. Aryshev, K. Kubo, T. Okugi, N. Terunuma, D. Zhou, A. Faus-Golfe, V. Kubytskyi, S. Liu, S. Wallon, and P. Bambade
Phys. Rev. Accel. Beams 21, 051001 (2018) - Published 23 May, 2018
K. Lekomtsev, A. Aryshev, A. A. Tishchenko, M. Shevelev, A. Lyapin, S. Boogert, P. Karataev, N. Terunuma, and J. Urakawa
Phys. Rev. Accel. Beams 21, 051301 (2018) - Published 10 May, 2018
F. Lemery, K. Floettmann, P. Piot, F. X. Kärtner, and R. Aßmann
Phys. Rev. Accel. Beams 21, 051302 (2018) - Published 25 May, 2018
Sheng-Fei Tong, Zheng-Mao Sheng, and M. Y. Yu
Phys. Rev. Accel. Beams 21, 051303 (2018) - Published 31 May, 2018
Ilya Agapov, Reinhard Brinkmann, Joachim Keil, and Rainer Wanzenberg
Phys. Rev. Accel. Beams 21, 051601 (2018) - Published 29 May, 2018
The combination of round beams and noninterleaved sextupoles allows for an extremely low emittance with good dynamic aperture.
Mukesh Kumar, L. K. Babbar, R. K. Deo, T. A. Puntambekar, and V. K. Senecha
Phys. Rev. Accel. Beams 21, 052801 (2018) - Published 8 May, 2018
P. Lee, G. Maynard, T. L. Audet, B. Cros, R. Lehe, and J.-L. Vay
Phys. Rev. Accel. Beams 21, 052802 (2018) - Published 9 May, 2018
N. Simos, H. Ludewig, H. Kirk, E. Dooryhee, S. Ghose, Z. Zhong, H. Zhong, S. Makimura, K. Yoshimura, J. R. J. Bennett, G. Kotsinas, Z. Kotsina, and K. T. McDonald
Phys. Rev. Accel. Beams 21, 053001 (2018) - Published 29 May, 2018
A. Lapierre, G. Bollen, D. Crisp, S. W. Krause, L. E. Linhardt, K. Lund, S. Nash, R. Rencsok, R. Ringle, S. Schwarz, M. Steiner, C. Sumithrarachchi, T. Summers, A. C. C. Villari, S. J. Williams, and Q. Zhao
Phys. Rev. Accel. Beams 21, 053401 (2018) - Published 31 May, 2018
Adi Hanuka and Levi Schächter
Phys. Rev. Accel. Beams 21, 054001 (2018) - Published 9 May, 2018
Yunhai Cai
Phys. Rev. Accel. Beams 21, 054002 (2018) - Published 23 May, 2018
Ji Qiang
Phys. Rev. Accel. Beams 21, 054201 (2018) - Published 29 May, 2018
A. Gamelin, C. Bruni, and D. Radevych
Phys. Rev. Accel. Beams 21, 054401 (2018) - Published 25 May, 2018
Karl Bane, Marc Guetg, and Alberto Lutman
Phys. Rev. Accel. Beams 21, 054402 (2018) - Published 29 May, 2018
Yongjun Li, Weixing Cheng, Li Hua Yu, and Robert Rainer
Phys. Rev. Accel. Beams 21, 054601 (2018) - Published 29 May, 2018
André Pilan Zanoni
Phys. Rev. Accel. Beams 21, 054801 (2018) - Published 23 May, 2018
Valeri Lebedev, Alexey Burov, and Sergei Nagaitsev
Phys. Rev. Accel. Beams 21, 059901 (2018) - Published 23 May, 2018
J. Braenzel, M. D. Barriga-Carrasco, R. Morales, and M. Schnürer
Phys. Rev. Lett. 120, 184801 (2018) - Published 4 May, 2018
R. Tarkeshian, J. L. Vay, R. Lehe, C. B. Schroeder, E. H. Esarey, T. Feurer, and W. P. Leemans
Phys. Rev. X 8, 021039 (2018) - Published 10 May, 2018
A new method for measuring the charge density in a narrow beam of relativistic electrons promises a minimally invasive technique for characterizing and controlling beams in next-generation particle accelerators.
Tyler W. Hughes, Si Tan, Zhexin Zhao, Neil V. Sapra, Kenneth J. Leedle, Huiyang Deng, Yu Miao, Dylan S. Black, Olav Solgaard, James S. Harris, Jelena Vuckovic, Robert L. Byer, Shanhui Fan, R. Joel England, Yun Jo Lee, and Minghao Qi
Phys. Rev. Applied 9, 054017 (2018) - Published 14 May, 2018
Beyond conventional rf accelerators, dielectric laser accelerators (DLAs) are an emerging technology to generate high-energy electron beams at very short length scales, with numerous applications in medicine, manufacturing, and basic science. Current setups use a free-space laser beam to drive the accelerator, but an on-chip optical power-delivery system would give the precise control needed to dramatically scale up device length, for higher total energies. The authors investigate the challenges, constraints, and avenues for on-chip optical coupling, and verify that it is a promising route for moving DLAs from proof-of-principle to application.