Near-Field Radiative Heat Transfer at Nanometer Distances

Soumyadipta Basu

ISBN 10: 3639519183 ISBN 13: 9783639519181
Editorial: Scholars' Press, 2013
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Descripción:

Near-Field Radiative Heat Transfer at Nanometer Distances | Soumyadipta Basu | Taschenbuch | 148 S. | Englisch | 2013 | Scholars' Press | EAN 9783639519181 | Verantwortliche Person für die EU: BoD - Books on Demand, In de Tarpen 42, 22848 Norderstedt, info[at]bod[dot]de | Anbieter: preigu. N° de ref. del artículo 105619109

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Sinopsis:

This book provides a thorough investigation of near-field heat transfer between parallel plates separated by a vacuum gap of nanometer distances which has potential applications in energy conversion devices, nanofabrication, and near-field imaging. Near-field heat transfer between doped Si plates at varying doping levels is calculated using the improved dielectric functions developed through this dissertation. The near-field energy transfer between two semi-infinite media is maximum when the real part of dielectric function is around -1 due to the excitation of surface waves. The optimized Drude model always results in greater near-field heat transfer compared to the Lorentz model and the maximum achievable near-field heat transfer is nearly 1 order greater than that between real materials. Unlike far-field radiation, the penetration depth in near-field heat transfer is dependent on the vacuum gap. This unusual feature results in a 10 nm thick SiC film behaving as completely opaque at 10 nm vacuum gap. The energy streamlines inside the emitter, receiver, and the vacuum gap are calculated which helps to decide the physical dimensions of the media exchanging thermal radiation

Reseña del editor: This book provides a thorough investigation of near-field heat transfer between parallel plates separated by a vacuum gap of nanometer distances which has potential applications in energy conversion devices, nanofabrication, and near-field imaging. Near-field heat transfer between doped Si plates at varying doping levels is calculated using the improved dielectric functions developed through this dissertation. The near-field energy transfer between two semi-infinite media is maximum when the real part of dielectric function is around -1 due to the excitation of surface waves. The optimized Drude model always results in greater near-field heat transfer compared to the Lorentz model and the maximum achievable near-field heat transfer is nearly 1 order greater than that between real materials. Unlike far-field radiation, the penetration depth in near-field heat transfer is dependent on the vacuum gap. This unusual feature results in a 10 nm thick SiC film behaving as completely opaque at 10 nm vacuum gap. The energy streamlines inside the emitter, receiver, and the vacuum gap are calculated which helps to decide the physical dimensions of the media exchanging thermal radiation

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Detalles bibliográficos

Título: Near-Field Radiative Heat Transfer at ...
Editorial: Scholars' Press
Año de publicación: 2013
Encuadernación: Taschenbuch
Condición: Neu

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