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1

Feenstra, Randall M., and Colin E. C. Wood, eds. Porous Silicon Carbide and Gallium Nitride. Chichester, UK: John Wiley & Sons, Ltd, 2008. http://dx.doi.org/10.1002/9780470751817.

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2

Razzell, A. G. Silicon carbide fibre silicon nitride matrix composites. [s.l.]: typescript, 1992.

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3

Weimer, Alan W. Carbide, Nitride and Boride Materials Synthesis and Processing. Dordrecht: Springer Netherlands, 1996.

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4

Weimer, Alan W., ed. Carbide, Nitride and Boride Materials Synthesis and Processing. Dordrecht: Springer Netherlands, 1997. http://dx.doi.org/10.1007/978-94-009-0071-4.

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5

Raftery, Theresa Maria. Electroconductive sialon-interstitial carbide composites. Dublin: University College Dublin, 1997.

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6

C, Wood Colin E., ed. Porous silicon carbide and gallium nitride: Epitaxy, catalysis, and biotechnology applications. Chichester, England: John Wiley & Sons, 2008.

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7

Sloof, Willem Gerrit. Internal stresses and microstructure of layer/substrate assemblies: Analysis of TiC and TiN coatings chemically vapour deposited on various substrates. Delft, Netherlands: Delft University Press, 1996.

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8

Zhou, Yijian. Effects of grain boundary and triple line structures on carbide precipitation in type 304L stainless steel. Ottawa: National Library of Canada, 2000.

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9

Reports, Mitchell Market. Boron Carbide and Boron Nitride. Elsevier Science, 1987.

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10

Gallium Nitride & Silicon Carbide Power Devices. World Scientific Publishing Co Pte Ltd, 2016.

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11

Baliga, B. Jayant. Gallium Nitride and Silicon Carbide Power Devices. WORLD SCIENTIFIC, 2017. http://dx.doi.org/10.1142/10027.

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12

Carbide, Nitride and Boride Materials Synthesis and Processing. Chapman & Hall in London, New York ., 1997.

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13

Weimer, A. W. Carbide, Nitride and Boride Materials Synthesis and Processing. Springer, 1996.

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14

Weimer, Alan W. Carbide, Nitride and Boride Materials Synthesis and Processing. Springer London, Limited, 2011.

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15

Wesley, Weimer Alan, ed. Carbide, nitride, and boride materials synthesis and processing. London: Chapman & Hall, 1997.

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16

Blank, H. Fabrication of Carbide and Nitride Pellets and the Nitride Irradiations Niloc 1 and Niloc 2. European Communities / Union (EUR-OP/OOPEC/OPOCE), 1991.

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17

Feenstra, Randall M., and Colin E. C. Wood. Porous Silicon Carbide and Gallium Nitride: Epitaxy, Catalysis, and Biotechnology Applications. Wiley & Sons, Incorporated, John, 2008.

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18

Center, Lewis Research, ed. Stability and rheology of dispersions of silicon nitride and silicon carbide. [Cleveland, Ohio]: National Aeronautics and Space Administration, 1987.

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19

Heiser, Jeffrey L. Thiophene hydrodesulfurization studies of monometallic, bimetallic and promoted carbide and nitride catalysts. 2000.

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20

United States. National Aeronautics and Space Administration., ed. NDE reliability and process control for structural ceramics. [Washington, D.C.]: National Aeronautics and Space Administration, 1987.

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21

Steven, Binari, ed. Wide-bandgap semiconductors for high-power, high-frequency, and high temparture applications--1999: Symposium held April 5-8, 1999, San Francisco, California, U.S.A. Warrendale, PA: Materials Research Society, 1999.

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22

E, Brito Manuel, Lin Hua-Tay, Plucknett Kevin, American Ceramic Society Meeting, and Symposium on Silicon-Based Structural Ceramics for the New Millennium (2002 : St. Louis, Mo.), eds. Silicon-based structural ceramics for the new Millennium: Proceedings of the Silicon-Based Structural Ceramics for the New Millennium Symposium : held at the 104th Annual Meeting of the American Ceramic Society : April 28-May 1, 2002, in St. Louis, Missouri. Westerville, Ohio: American Ceramic Society, 2003.

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23

Silicon-based structural ceramics for the new Millennium: Proceedings of the Silicon-Based Structural Ceramics for the New Millennium Symposium : held at the 104th Annual Meeting of the American Ceramic Society, April 28-May 1, 2002, in St. Louis, Missouri. Westerville, OH: American Ceramic Society, 2004.

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24

W, Sheldon Brian, Danforth Stephen C, and Symposium on Silicon-Based Structural Ceramics (1993 : Honolulu, Hawaii), eds. Silicon-based structural ceramics. Westerville, Ohio: American Ceramic Society, 1994.

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25

(Editor), Manuel E. Brito, Hua-Tay Lin (Editor), and Kevin Plucknett (Editor), eds. Silicon Based Structural Ceramics for the New Millennium (Ceramic Transactions Series). American Ceramic Society, 2003.

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26

Lin, Hua-Tay, Manuel E. Brito, and Kevin Plucknett. Silicon-Based Structural Ceramics for the New Millennium. Wiley & Sons, Incorporated, John, 2012.

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27

Aegerter, Paul A. Thiophene hydrodesulfurization over alumina-supported molybdenum carbide nitride catalysts: Adsorption sites, catalytic activities and nature of the active surface. 1996.

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28

G, Penn B., and George C. Marshall Space Flight Center., eds. Preparation of silicon carbide-silicon nitride fibers by the pyrolysis of polycarbosilazane precursors: (Center director's Discretionary Fund final report). [Marshall Space Flight Center, Ala.]: National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 1985.

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29

Preparation of silicon carbide-silicon nitride fibers by the pyrolysis of polycarbosilazane precursors: (Center director's Discretionary Fund final report). [Marshall Space Flight Center, Ala.]: National Aeronautics and Space Administration, George C. Marshall Space Flight Center, 1985.

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30

J, Roth Don, and Lewis Research Center, eds. Probability of detection of internal voids in structural ceramics using microfocus radiography. [Cleveland, Ohio: National Aeronautics and Space Administration, Lewis Research Center, 1985.

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31

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. Pittsburgh, PA: Materials Research Society, 1994.

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32

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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33

Fisher, David. Mechanical Properties of MAX Phases. Materials Research Forum LLC, 2021. http://dx.doi.org/10.21741/9781644901274.

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Abstract:
MAX Phase Materials are uniquely structured carbide and nitride materials which combine the rigidity, oxidation-resistance and high-temperature strength of ceramic materials with such metallic properties as good machinability, thermal-shock resistance, damage-tolerance and good transport properties. Potential applications include microelectronic layers, coatings for electrical contacts, thermal shock-resistant refractories, high-temperature heating elements, neutron-irradiation resistant nuclear applications, thermal barriers, protective aerospace coatings, and bio-compatible materials. The book reviews theoretical and experimental research up to early 2021 and references 185 original resources with their direct web links for in-depth reading.
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