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Chemical vapor deposition growth and characterization of two-dimensional hexagonal boron nitride
Record Type:
Electronic resources : Monograph/item
Title/Author:
Chemical vapor deposition growth and characterization of two-dimensional hexagonal boron nitrideby Roland Yingjie Tay.
Author:
Tay, Roland Yingjie.
Published:
Singapore :Springer Singapore :2018.
Description:
xxxvii, 122 p. :digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Boron nitride.
Online resource:
http://dx.doi.org/10.1007/978-981-10-8809-4
ISBN:
9789811088094$q(electronic bk.)
Chemical vapor deposition growth and characterization of two-dimensional hexagonal boron nitride
Tay, Roland Yingjie.
Chemical vapor deposition growth and characterization of two-dimensional hexagonal boron nitride
[electronic resource] /by Roland Yingjie Tay. - Singapore :Springer Singapore :2018. - xxxvii, 122 p. :digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
Synthesis of Two-Dimensional Hexagonal Boron Nitride -- Literature Review -- Controllable Growth of Hexagonal Boron Nitride Films on Cu Foils -- Growth of Nanocrystalline Boron Nitride Films on Dielectric Substrates -- Growth of Large Single Crystalline Monolayer Boron Nitride Hexagons -- Growth of Oriented Single Crystalline Hexagonal Boron Nitride Monolayers -- A New Single-Source Precursor for Monolayer h-BN and h-BCN Thin Films -- Conclusions and Recommendations for Future Work.
This thesis focuses on the growth of a new type of two-dimensional (2D) material known as hexagonal boron nitride (h-BN) using chemical vapor deposition (CVD) It also presents several significant breakthroughs in the authors' understanding of the growth mechanism and development of new growth techniques, which are now well known in the field. Of particular importance is the pioneering work showing experimental proof that 2D crystals of h-BN can indeed be hexagonal in shape. This came as a major surprise to many working in the 2D field, as it had been generally assumed that hexagonal-shaped h-BN was impossible due to energy dynamics. Beyond growth, the thesis also reports on synthesis techniques that are geared toward commercial applications. Large-area aligned growth and up to an eightfold reduction in the cost of h-BN production are demonstrated. At present, all other 2D materials generally use h-BN as their dielectric layer and for encapsulation. As such, this thesis lays the cornerstone for using CVD 2D h-BN for this purpose.
ISBN: 9789811088094$q(electronic bk.)
Standard No.: 10.1007/978-981-10-8809-4doiSubjects--Topical Terms:
818695
Boron nitride.
LC Class. No.: TA455.B65 / T397 2018
Dewey Class. No.: 621.3
Chemical vapor deposition growth and characterization of two-dimensional hexagonal boron nitride
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Synthesis of Two-Dimensional Hexagonal Boron Nitride -- Literature Review -- Controllable Growth of Hexagonal Boron Nitride Films on Cu Foils -- Growth of Nanocrystalline Boron Nitride Films on Dielectric Substrates -- Growth of Large Single Crystalline Monolayer Boron Nitride Hexagons -- Growth of Oriented Single Crystalline Hexagonal Boron Nitride Monolayers -- A New Single-Source Precursor for Monolayer h-BN and h-BCN Thin Films -- Conclusions and Recommendations for Future Work.
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This thesis focuses on the growth of a new type of two-dimensional (2D) material known as hexagonal boron nitride (h-BN) using chemical vapor deposition (CVD) It also presents several significant breakthroughs in the authors' understanding of the growth mechanism and development of new growth techniques, which are now well known in the field. Of particular importance is the pioneering work showing experimental proof that 2D crystals of h-BN can indeed be hexagonal in shape. This came as a major surprise to many working in the 2D field, as it had been generally assumed that hexagonal-shaped h-BN was impossible due to energy dynamics. Beyond growth, the thesis also reports on synthesis techniques that are geared toward commercial applications. Large-area aligned growth and up to an eightfold reduction in the cost of h-BN production are demonstrated. At present, all other 2D materials generally use h-BN as their dielectric layer and for encapsulation. As such, this thesis lays the cornerstone for using CVD 2D h-BN for this purpose.
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