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1

Fossum, Eric R. Hybridization of detector array and integrated circuit for readout. National Aeronautics and Space Administration, 1992.

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2

Hard X-Ray, Gamma-Ray, and Neutron Detector Physics (Conference) (15th 2013 San Diego, Calif.). Hard X-Ray, Gamma-Ray, and Neutron Detector Physics XV: 26-28 August 2013, San Diego, California, United States. Edited by Fiederle, Michael, editor of compilation and SPIE (Society). SPIE, 2013.

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3

James, R. B., Larry A. Franks, and Arnold Burger. Hard x-ray, gamma-ray, and neutron detector physics XII: 2-4 August 2010, San Diego, California, United States. Edited by SPIE (Society). SPIE, 2010.

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4

(Society), SPIE, ed. Hard X-ray, gamma-ray, and neutron detector physics XI: 3-6 August 2009, San Diego, California, United States. SPIE, 2009.

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5

(Society), SPIE, ed. Hard X-ray, gamma-ray, and neutron detector physics XIII: 22-24 August 2011, San Diego, California, United States. SPIE, 2011.

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6

James, R. B., Larry A. Franks, and Arnold Burger. Hard x-ray, gamma-ray, and neutron detector physics XII: 2-4 August 2010, San Diego, California, United States. Edited by SPIE (Society). SPIE, 2010.

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7

Society of Photo-optical Instrumentation Engineers, ed. Hard X-ray and gamma-ray detector physics IX: 27-29 August 2007, San Diego, California, USA. SPIE, 2007.

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8

Spieler, Helmuth. Semiconductor Detector Systems (Semiconductor Science and Technology). Oxford University Press, USA, 2005.

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9

Hirohata, A., and J. Y. Kim. Optically Induced and Detected Spin Current. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780198787075.003.0006.

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This chapter presents an alternative method of injecting spin-polarized electrons into a nonmagnetic semiconductor through photoexcitation. This method uses circularly-polarized light, whose energy needs to be the same as, or slightly larger than, the semiconductor band-gap, to excite spin-polarized electrons. This process will introduce a spin-polarized electron-hole pair, which can be detected as electrical signals. Such an optically induced spin-polarized current can only be generated in a direct band-gap semiconductor due to the selection rule described in the following sections. This intr
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10

Green, Stuart, Robert G. Zamenhof, and Denise E. Delahunty. Radiation measurement. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199655212.003.0004.

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The ability to make accurate and reproducible measurements requires a detailed knowledge of radiation detection mechanisms, quantities to be measured, basic measurement techniques, and assessment of measurement uncertainties. The chapter begins with an overview of the operational dose quantities and the mechanisms by which measurements are traced to a suitable primary standard. This is followed by some tips on detector selection for both dose rate and contamination applications, before a more detailed description of the basic functional characteristics of gas detectors, scintillation detectors
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11

Burger, Arnold, Ralph James, Michael Fiederle, and Larry Franks. Hard X-Ray, Gamma-Ray, and Neutron Detector Physics XVI. SPIE, 2014.

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12

Albert C. Beer (Series Editor), Robert K. Willardson (Series Editor), and Eicke R. Weber (Series Editor), eds. Semiconductors for Room Temperature Nuclear Detector Applications, Volume 43 (Semiconductors and Semimetals). Academic Press, 1995.

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13

Nikolic, Branislav K., Liviu P. Zarbo, and Satofumi Souma. Spin currents in semiconductor nanostructures: A non-equilibrium Green-function approach. Edited by A. V. Narlikar and Y. Y. Fu. Oxford University Press, 2017. http://dx.doi.org/10.1093/oxfordhb/9780199533046.013.24.

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This article examines spin currents and spin densities in realistic open semiconductor nanostructures using different tools of quantum-transport theory based on the non-equilibrium Green function (NEGF) approach. It begins with an introduction to the essential theoretical formalism and practical computational techniques before explaining what pure spin current is and how pure spin currents can be generated and detected. It then considers the spin-Hall effect (SHE), and especially the mesoscopic SHE, along with spin-orbit couplings in low-dimensional semiconductors. It also describes spin-curre
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14

James, R. B., T. E. Schlesinger, Paul Siffert, and Larry Franks. Semiconductors for Room-Temperature Radiation Detector Applications: Volume 302. University of Cambridge ESOL Examinations, 2014.

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15

James, R. B. (Ralph B.), Materials Research Society Meeting, and Symposium on Semiconductors for Room-Temperature Radiation Detector Applications (2nd : 1997 : Boston, Mass.), eds. Semiconductors for room-temperature radiation detector applications II: Symposium held December 1-5, 1997, Boston, Massachusetts, U.S.A. Materials Research Society, 1997.

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16

Hard X-ray and gamma-ray detector physics VI: 2-3 August 2004, Denver, Colorado, USA. SPIE, 2005.

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17

Arnold, Burger, Franks Larry A, James R. B, and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray and gamma-ray detector physics VI: 3-4 August, 2004, Denver, Colorado, USA. SPIE, 2004.

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18

Instrumentation, Society Of Photo-Optical. Hard X-Ray and Gamma-Ray Detector Physics VII: 1-3 August, 2005, San Diego, California, USA. SPIE-International Society for Optical Engine, 2005.

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19

B, James R., and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray and gamma-ray detector physics III: 30 July-1 August 2001, San Diego, USA. SPIE, 2001.

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20

B, James R., and Symposium on Semiconductors for Room-Temperature Radiation Detector Applications (1st : 1993 : San Francisco, Calif.), eds. Semiconductors for room-temperature radiation detector applications: Symposium held April 12-16, 1993, San Francisco, California, U.S.A. Materials Research Society, 1993.

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21

B, James R., Schirato Richard C, and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray, gamma-ray, and neutron detector physics: 19-23 July 1999, Denver, Colorado. SPIE, 1999.

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22

A, Franks Larry, and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray and gamma-ray detector physics V: 4-5 August, 2003, San Diego, California, USA. SPIE, 2004.

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23

Hard X-Ray, Gamma-Ray, and Neutron Detector Physics X: 11-13 August 2008, San Diego, California, USA. SPIE, 2008.

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24

B, James R., Schirato Richard C, and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray, gamma-ray, and neutron detector physics II: 31 July-2 August, 2000, San Diego, [California] USA. SPIE, 2000.

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25

James, R. B., T. E. Schlesinger, and Paul Siffert. Semiconductors for Room-Temperature Radiation Detector Applications: Symposium Held April 12-16, 1993, San Francisco, California, U.S.A. (Materials Research Society Symposium Proceedings). Materials Research Society, 1993.

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26

A, Franks Larry, and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray and gamma-ray detector physics and Penetrating radiation systems VIII: 14-17 August, 2006, San Diego, California, USA. SPIE, 2006.

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27

B, Hoover Richard, Doty F. Patrick, and Society of Photo-optical Instrumentation Engineers., eds. Hard X-ray and gamma-ray detector physics, optics, and applications: 31 July-1 August 1997, San Diego, California. SPIE, 1997.

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