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TlBr single crystals grown using the vertical Bridgman-Stockbarger method were characterized for semiconductor based radiation detector applications. It has been shown that the vertical Bridgman-Stockbarger method is effective to grow high-quality single crystalline ingots of TlBr. The TlBr single crystalline sample, which was located 6 cm from the tip of the ingot, exhibited lower impurity concentration, higher crystalline quality, high enough bandgap (>2.7 eV), and higher resistivity (2.5 × 1011 Ω·cm) which enables using the fabricated samples from the middle part of the TlBr ingot for fabricating high performance semiconductor radiation detectors.
Wydawca
Czasopismo
Rocznik
Tom
Strony
297--301
Opis fizyczny
Bibliogr. 14 poz., rys., tab.
Twórcy
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- WCU Department of Energy Science, Sungkyunkwan University, Suwon, Republic of Korea, 440-746
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
autor
- Korea Atomic Energy Research Institute, 29 Geumgu-gil, Jeong-eup, Republic of Korea 580-185
Bibliografia
- [1] Szeles C., Phys. Status Solidi B, 241 (2004), 783.
- [2] Nam H.G., Shin M.S., Cha K.H., Cho N.I., Yun E.J., J. Korean Phys. Soc., 48 (2006), 1514.
- [3] Androulakis J., Peter S.C., Li H., Malliakas C.D., Peters J.A., Liu Z., Wessels B.W., Song J.-H., Jin H., Freeman A.J., Kanatzidis M.G., Adv. Mater., 23 (2011), 4163.
- [4] Kouznetsova M.S., Lisitskya I.S., Zatolokab S.I., Gostilo V.V., Nucl. Instrum. Meth. A, 531 (2004), 174.
- [5] Hitomi K., Shoji T., Ishii K., J. Cryst. Growth, 379 (2013), 39.
- [6] Shorohov M., Muktepavela F., Grigorjeva L., Maniks J., Millers D., Nucl. Instrum. Meth. A, 607 (2009), 120.
- [7] Hitomi K., Kikuchi Y., Shoji T., Ishii K., Ieee T. Nucl. Sci., 56 (2009), 1859.
- [8] Kostamo P., Shorohov M., Gostilo V., Sipila H., Kozlov V., Lisitsky I., Kuznetsov M., Lankinen A., Danilewsky A.N., Lipsanen H., Leskela M., Nucl. Instrum. Meth. A, 607 (2009), 129.
- [9] Kozlov V., Andersson H., Gostilo V., Kemell M., Kostamo P., Kouznetsov M.S., Leskela M., Lipsanen H., Lisitsky I.S., Shorohov M., Sipila H., Nucl. Instrum. Meth. A, 607 (2009), 126.
- [10] Santos Dos R.A., Silva Da J.B.R., Gennari R.F., Martins J.F.T., Ferraz C.D.M., Hamada M.M., Mesquita De C.H., In Proceedings Of The Ieee Nuclear Science Symposium And Medical Imaging Conference, Anaheim, 2012.
- [11] Park K.C., Ma D.Y., Kim K.H., Thin Solid Films, 305 (1997), 201.
- [12] Hitomi K., Onodera T., Shoji T., Nucl. Instrum. MetH. A, 579 (2007), 153.
- [13] Hitomi K., Matsumoto M., Muroi O., Shoji T., Hiratate Y., J. Cryst. Growth, 225 (2001), 129.
- [14] Dyk Van E.E., Meyer E.L., Renew. Energ., 29 (2004), 333.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-553d9c8c-3f38-4b72-a48f-1a55b48f8c8a