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Sako, Hiroyuki; Ichikawa, Masaya; Naruki, Megumi; Sakaguchi, Takao; Sato, Susumu; 12 of others*
Journal of Subatomic Particles and Cosmology (Internet), 1-2, p.100012_1 - 100012_7, 2024/11
Jung, H.*; Matsumura, Daiju; 12 of others*
ACS Energy Letters (Internet), 9(5), p.2162 - 2172, 2024/04
Times Cited Count:9 Percentile:91.09(Chemistry, Physical)Wright, T.*; Harada, Hideo; Kimura, Atsushi; 121 of others*
European Physical Journal A, 60(3), p.70_1 - 70_11, 2024/03
Times Cited Count:0 Percentile:0.00(Physics, Nuclear)Suetsugu, Shota*; Sakai, Hironori; Opletal, P.; Tokiwa, Yoshifumi; Haga, Yoshinori; 12 of others*
Science Advances (Internet), 10(6), p.eadk3772_1 - eadk3772_6, 2024/02
Times Cited Count:10 Percentile:96.78(Multidisciplinary Sciences)Torres-Snchez, P.*; Harada, Hideo; Kimura, Atsushi; 129 of others*
Physical Review C, 107(6), p.064617_1 - 064617_15, 2023/06
Times Cited Count:1 Percentile:28.72(Physics, Nuclear)Sosnin, N. V.*; Harada, Hideo; Kimura, Atsushi; 128 of others*
Physical Review C, 107(6), p.065805_1 - 065805_9, 2023/06
Times Cited Count:0 Percentile:0.00(Physics, Nuclear)Lederer-Woods, C.*; Harada, Hideo; Kimura, Atsushi; 128 of others*
European Physical Journal A, 58(12), p.239_1 - 239_9, 2022/12
Times Cited Count:0 Percentile:0.00(Physics, Nuclear)Bloomfield, T.*; Tanida, Kiyoshi; Belle Collaboration*; 212 of others*
Physical Review D, 105(7), p.072007_1 - 072007_13, 2022/04
Times Cited Count:2 Percentile:30.25(Astronomy & Astrophysics)Lederer-Woods, C.*; Harada, Hideo; Kimura, Atsushi; 123 of others*
Physical Review C, 104(3), p.L032803_1 - L032803_6, 2021/09
Times Cited Count:8 Percentile:64.85(Physics, Nuclear)Lederer-Woods, C.*; Harada, Hideo; Kimura, Atsushi; 121 of others*
Physical Review C, 104(2), p.L022803_1 - L022803_7, 2021/08
Times Cited Count:8 Percentile:68.98(Physics, Nuclear)Amaducci, S.*; Harada, Hideo; Kimura, Atsushi; 127 of others*
Universe (Internet), 7(6), p.200_1 - 200_11, 2021/06
Times Cited Count:5 Percentile:33.94(Astronomy & Astrophysics)Dietz, M.*; Harada, Hideo; Kimura, Atsushi; 121 of others*
Physical Review C, 103(4), p.045809_1 - 045809_8, 2021/04
Times Cited Count:7 Percentile:59.44(Physics, Nuclear)Koga, Jun*; Kimura, Atsushi; Okudaira, Takuya*; 12 of others*
Journal of Instrumentation (Internet), 16(2), p.P02001_1 - P02001_13, 2021/02
Times Cited Count:1 Percentile:5.79(Instruments & Instrumentation)Chiaveri, E.*; Aberle, O.*; Alcayne, V.*; Kimura, Atsushi; 124 of others*
EPJ Web of Conferences, 239, p.17001_1 - 17001_8, 2020/09
Times Cited Count:7 Percentile:96.12(Nuclear Science & Technology)Terranova, N.*; Aberle, O.*; Alcayne, V.*; Kimura, Atsushi; 125 of others*
EPJ Web of Conferences, 239, p.01024_1 - 01024_5, 2020/09
Times Cited Count:6 Percentile:96.12(Nuclear Science & Technology)Manna, A.*; Aberle, O.*; Alcayne, V.*; Kimura, Atsushi; 125 of others*
EPJ Web of Conferences, 239, p.01008_1 - 01008_5, 2020/09
Times Cited Count:4 Percentile:92.34(Nuclear Science & Technology)Chatzichristos, A.*; Sugiyama, Jun; 12 of others*
Physical Review Letters, 123(9), p.095901_1 - 095901_5, 2019/08
Times Cited Count:3 Percentile:26.02(Physics, Multidisciplinary)We report measurements of the diffusion rate of isolated ion-implanted Li
within 120 nm of the surface of oriented single-crystal rutile TiO
using a radiotracer technique. The
particles from the
Li
decay provide a sensitive monitor of the distance from the surface and how the depth profile of Li evolves with time. The main findings are that the implanted Li diffuses and traps at the (001) surface. The
dependence of the diffusivity is described by a bi-Arrhenius expression above 200 K, whereas at lower temperatures it has a much smaller barrier. We consider possible origins for the surface trapping, as well the nature of the low-
barrier.
Guguchia, Z.*; Frandsen, B. A.*; Santos-Cottin, D.*; Shamoto, Shinichi; Gauzzi, A.*; Uemura, Yasutomo*; 12 of others*
Physical Review Materials (Internet), 3(4), p.045001_1 - 045001_9, 2019/04
Times Cited Count:6 Percentile:22.24(Materials Science, Multidisciplinary)We have studied the Mott transition of BaCoS by pressure and Ni substitution using
SR, and examined the appearance of the quantum phase transition. The results show that both quantum phase transitions are first-order transitions at zero temperature.
Aidala, C.*; Hasegawa, Shoichi; Imai, Kenichi; Sako, Hiroyuki; Sato, Susumu; Tanida, Kiyoshi; PHENIX Collaboration*; 312 of others*
Nature Physics, 15(3), p.214 - 220, 2019/03
Times Cited Count:113 Percentile:97.61(Physics, Multidisciplinary)Lederer-Woods, C.*; Battino, U.*; Ferreira, P.*; Gawlik, A.*; Kimura, Atsushi; n_TOF Collaboration*; 128 of others*
Physics Letters B, 790, p.458 - 465, 2019/03
Times Cited Count:14 Percentile:74.14(Astronomy & Astrophysics)