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1

Buzzo, Marco. Dopant imaging and profiling of wide bandgap semiconductor devices. Hartung-Gorre, 2007.

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2

Szweda, Roy. Gallium nitride & related wide bandgap materials & devices: A market & technology overview 1996-2001. Elsevier Advanced Technology, 1997.

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3

State-of-the-Art Program on Compound Semiconductors (47th 2007 Washington, DC). State-of-the-Art Program on Compound Semiconductorss 47 (SOTAPOCS 47) and Wide Bandgap Semiconductor Materials and Devices 8. Edited by Wang J, Electrochemical Society Meeting, Electrochemical Society. Electronics and Photonics Division., Electrochemical Society. Luminescence and Display Materials Division., Electrochemical Society Sensor Division, and Symposium on Wide Bandgap Semiconductor Materials and Devices (8th : 2007 : Washington, DC). Electrochemical Society, 2007.

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4

State-of-the-Art, Program on Compound Semiconductors (47th 2007 Washington DC). State-of-the-Art Program on Compound Semiconductorss 47 (SOTAPOCS 47) and Wide Bandgap Semiconductor Materials and Devices 8. Electrochemical Society, 2007.

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5

State-of-the-Art Program on Compound Semiconductors (47th 2007 Washington, DC). State-of-the-Art Program on Compound Semiconductorss 47 (SOTAPOCS 47) and Wide Bandgap Semiconductor Materials and Devices 8. Edited by Wang J, Electrochemical Society Meeting, Electrochemical Society. Electronics and Photonics Division., Electrochemical Society. Luminescence and Display Materials Division., Electrochemical Society Sensor Division, and Symposium on Wide Bandgap Semiconductor Materials and Devices (8th : 2007 : Washington, DC). Electrochemical Society, 2007.

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6

State-of-the-Art Program on Compound Semiconductors (47th 2007 Washington, DC). State-of-the-Art Program on Compound Semiconductorss 47 (SOTAPOCS 47) and Wide Bandgap Semiconductor Materials and Devices 8. Edited by Wang J, Electrochemical Society Meeting, Electrochemical Society. Electronics and Photonics Division., Electrochemical Society. Luminescence and Display Materials Division., Electrochemical Society Sensor Division, and Symposium on Wide Bandgap Semiconductor Materials and Devices (8th : 2007 : Washington, DC). Electrochemical Society, 2007.

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7

Ferro, Gabriel. 2010 wide bandgap cubic semiconductors: From growth to devices : proceedings of the E-MRS Symposium F, Strasbourg, France, 8-10 June 2010. Edited by European Materials Research Society. Meeting, American Institute of Physics, and European Science Foundation. American Institute of Physics, 2010.

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8

Symposium on Wide Bandgap Semiconductors and Devices (1995 Chicago, Ill.). Proceedings of the Symposium on Wide Bandgap Semiconductors and Devices and the Twenty-Third State-of-the-Art Program on Compound Semiconductors (SOTAPOCS XXIII). Electrochemical Society, 1995.

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9

Philadelphia, Pa ). State-of-the-Art Program on Compound Semiconductors (36th 2002. State-of-the-Art Program on Compound Semiconductors XXXVI and Wide Bandgap Semiconductors for Photonic and Electronic Devices and Sensors II: Proceedings of the international symposia. Electrochemical Society, 2002.

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10

State-of-the-Art Program on Compound Semiconductors (45rd 2006 Cancun, Mex.). State-of-the-Art Program on Compound Semiconductors 45 (SOTAPOCS 45) and Wide Bandgap Semiconductor Materials and Devices 7 / editors, F. Ren ... [et al.]. Electrochemical Society, 2006.

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11

Wide Bandgap Based Devices. MDPI, 2021. http://dx.doi.org/10.3390/books978-3-0365-0567-1.

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12

Wide energy bandgap electronic devices. World Scientific Pub., 2003.

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13

Fan, Ren, and Zolper J. C, eds. Wide energy bandgap electronic devices. World Scientific Pub., 2003.

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14

Wide Bandgap Semiconductor Power Devices. Elsevier, 2019. http://dx.doi.org/10.1016/c2016-0-04021-4.

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15

Ren, Fan, and John C. Zolper. Wide Energy Bandgap Electronic Devices. WORLD SCIENTIFIC, 2003. http://dx.doi.org/10.1142/5173.

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16

Dutta, Achyut K., Mohammad Matin, and Abdul A. S. Awwal. Wide Bandgap Power Devices and Applications. SPIE, 2017.

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17

Singisetti, Uttam, Towhidur Razzak, and Yuewei Zhang. Wide Bandgap Semiconductor Electronics and Devices. WORLD SCIENTIFIC, 2020. http://dx.doi.org/10.1142/11719.

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18

Ren, Fan, Randy J. Shul, Wilfried Pletschen, and Masanori Murakami. Wide-Bandgap Electronic Devices: Volume 622. University of Cambridge ESOL Examinations, 2014.

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19

(Editor), Gertrude F. Neumark, Igor L. Kuskovsky (Editor), and Hongxing Jiang (Editor), eds. Wide Bandgap Light Emitting Materials And Devices. Wiley-VCH, 2007.

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20

Jiang, Hongxing, Gertrude F. Neumark, and Igor L. Kuskovsky. Wide Bandgap Light Emitting Materials and Devices. Wiley & Sons, Limited, John, 2007.

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21

F, Neumark Gertrude, Kuskovsky Igor L, and Jiang H. X, eds. Wide bandgap light emitting materials and devices. Wiley-VCH, 2007.

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22

Dutta, Achyut, Mohammad Matin, and Srabanti Chowdhury. Wide Bandgap Power Devices and Applications II. SPIE, 2018.

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23

Neumark, Gertrude F., Igor L. Kuskovsky, and Hongxing Jiang, eds. Wide Bandgap Light Emitting Materials and Devices. Wiley, 2007. http://dx.doi.org/10.1002/9783527617074.

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24

Jiang, Hongxing, Gertrude F. Neumark, and Igor L. Kuskovsky. Wide Bandgap Light Emitting Materials and Devices. Wiley & Sons, Incorporated, John, 2008.

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25

Wide Bandgap Semiconductor Based Micro/Nano Devices. MDPI, 2019. http://dx.doi.org/10.3390/books978-3-03897-843-5.

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26

Wang, Fei (Fred), Zheyu Zhang, and Edward A. Jones. Characterization of Wide Bandgap Power Semiconductor Devices. Institution of Engineering and Technology, 2018. http://dx.doi.org/10.1049/pbpo128e.

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27

Nitride Wide Bandgap Semiconductor Material and Electronic Devices. Taylor & Francis Group, 2016.

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28

Baliga, B. Jayant. Wide Bandgap Semiconductor Power Devices: Materials, Physics, Design and Applications. Elsevier Science & Technology, 2018.

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29

(Editor), Kiyoshi Takahashi, Akihiko Yoshikawa (Editor), and Adarsh Sandhu (Editor), eds. Wide Bandgap Semiconductors: Fundamental Properties and Modern Photonic and Electronic Devices. Springer, 2007.

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30

Takahashi, Kiyoshi, Akihiko Yoshikawa, and Adarsh Sandhu. Wide Bandgap Semiconductors: Fundamental Properties and Modern Photonic and Electronic Devices. Springer, 2010.

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31

Wellmann, Peter. Wide Bandgap Materials for Power Electronic Applications: Materials, Devices, and Applications. Wiley & Sons, Limited, John, 2021.

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32

Szweda, R. Gallium Nitride and Related Wide Bandgap Materials & Devices. A Market and Technology Overview 1998-2003. 2nd ed. Elsevier Science, 2000.

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33

(Editor), R. J. Shul, Fan Ren (Editor), Wilfried Pletschen (Editor), and Masanori Murakami (Editor), eds. Wide-Bandgap Electronic Devices: Symposium Held April 24-27, 2000, San Francisco, California, U.S.A. (Materials Research Society Symposia Proceedings, V. 622.). Materials Research Society, 2001.

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34

H, Carter Calvin, and Materials Research Society. Meeting Symposium D., eds. Diamond, SiC and nitride wide bandgap semiconductors: Symposium held April 4-8, 1994, San Francisco, California, U.S. Materials Research Society, 1994.

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35

Society, Electrochemical. State-Of-The-Art Program on Compound Semiconductors XXXVIII and Wide Bandgap Semiconductors for Photonic and Electronic Devices and Sensors III: Proce. Electrochemical Society, 2003.

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36

Ren, F. Proceedings of the Symposium on Wide Bandgap Semiconductors and Devices and the Twenty-Third State-Of-The-Art Program on Compound Semiconductors (Sota (Proceedings). Electrochemical Society, 1995.

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37

Carter, Calvin H., and Gennady Gildenblat. Diamond, Sic and Nitride Wide Bandgap Semiconductors: Symposium Held April 4-8, 1994, San Francisco, California, U.S.A. (Materials Research Society Symposium Proceedings). Materials Research Society, 1994.

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