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Optoelectronic properties of graphen...
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Roy, Kallol.
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Optoelectronic properties of graphene-based van der Waals hybrids
Record Type:
Electronic resources : Monograph/item
Title/Author:
Optoelectronic properties of graphene-based van der Waals hybrids/ by Kallol Roy.
Author:
Roy, Kallol.
Published:
Cham :Springer International Publishing : : 2020.,
Description:
xxii, 264 p. :ill. (some col.), digital ;24 cm.
[NT 15003449]:
Introduction -- Review: Electronic Band Structure and Interface Properties -- Review: Optoelectronic Response and Van der Waals Materials -- Experimental Techniques, Instruments, and Cryostat -- Material and Heterostructure Interface Characterization -- Photoresponse in Graphene-on- MoS 2 Heterostructures -- Switching Operation with Graphene-on- MoS 2 Heterostructures -- Bilayer-Graphene-on- MoS 2 Heterostructures -- Photoresponse and Photon Noise in BLG-MoS2 Hybrids -- Other Graphene, MoS2 Devices and Room Temperature Operations -- Conclusion and Outlook.
Contained By:
Springer Nature eBook
Subject:
Photon detectors. -
Online resource:
https://doi.org/10.1007/978-3-030-59627-9
ISBN:
9783030596279
Optoelectronic properties of graphene-based van der Waals hybrids
Roy, Kallol.
Optoelectronic properties of graphene-based van der Waals hybrids
[electronic resource] /by Kallol Roy. - Cham :Springer International Publishing :2020. - xxii, 264 p. :ill. (some col.), digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
Introduction -- Review: Electronic Band Structure and Interface Properties -- Review: Optoelectronic Response and Van der Waals Materials -- Experimental Techniques, Instruments, and Cryostat -- Material and Heterostructure Interface Characterization -- Photoresponse in Graphene-on- MoS 2 Heterostructures -- Switching Operation with Graphene-on- MoS 2 Heterostructures -- Bilayer-Graphene-on- MoS 2 Heterostructures -- Photoresponse and Photon Noise in BLG-MoS2 Hybrids -- Other Graphene, MoS2 Devices and Room Temperature Operations -- Conclusion and Outlook.
This thesis deals with the development and in-depth study of a new class of optoelectronic material platform comprising graphene and MoS_2, in which MoS_2 is used essentially to sensitize graphene and lead to unprecedently high gain and novel opto-electronic memory effects. The results presented here open up the possibility of designing a new class of photosensitive devices which can be utilized in various optoelectronic applications including biomedical sensing, astronomical sensing, optical communications, optical quantum information processing and in applications requiring low intensity photodetection and number resolved single photon detection.
ISBN: 9783030596279
Standard No.: 10.1007/978-3-030-59627-9doiSubjects--Topical Terms:
707363
Photon detectors.
LC Class. No.: QC787.P46 / R69 2020
Dewey Class. No.: 620.115
Optoelectronic properties of graphene-based van der Waals hybrids
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Introduction -- Review: Electronic Band Structure and Interface Properties -- Review: Optoelectronic Response and Van der Waals Materials -- Experimental Techniques, Instruments, and Cryostat -- Material and Heterostructure Interface Characterization -- Photoresponse in Graphene-on- MoS 2 Heterostructures -- Switching Operation with Graphene-on- MoS 2 Heterostructures -- Bilayer-Graphene-on- MoS 2 Heterostructures -- Photoresponse and Photon Noise in BLG-MoS2 Hybrids -- Other Graphene, MoS2 Devices and Room Temperature Operations -- Conclusion and Outlook.
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This thesis deals with the development and in-depth study of a new class of optoelectronic material platform comprising graphene and MoS_2, in which MoS_2 is used essentially to sensitize graphene and lead to unprecedently high gain and novel opto-electronic memory effects. The results presented here open up the possibility of designing a new class of photosensitive devices which can be utilized in various optoelectronic applications including biomedical sensing, astronomical sensing, optical communications, optical quantum information processing and in applications requiring low intensity photodetection and number resolved single photon detection.
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Chemistry and Materials Science (SpringerNature-11644)
based on 0 review(s)
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11.線上閱覽_V
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EB QC787.P46 R69 2020
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