Light Emission by Nonequilibrium Bodies: Local Kirchhoff Law

Излучение света неравновесными телами: локальный закон Кирхгофа
Jean‐Jacques Greffet, Patrick Bouchon, Giovanni Brucoli, François Marquier
2018-04-06

electroluminescencelocal Kirchhoff lawlocal thermal emission ratenonequilibrium bodiesphotoluminescence
The goal of this paper is to introduce a local form of Kirchhoff law to model light emission by nonequilibrium bodies. While absorption by a finite-size body is usually described using the absorption cross section, we introduce a local absorption rate per unit volume and also a local thermal emission rate per unit volume. Their equality is a local form of Kirchhoff law. We revisit the derivation of this equality and extend it to situations with subsystems in local thermodynamic equilibrium but not in equilibrium between them, such as hot electrons in a metal or electrons with different Fermi levels in the conduction band and in the valence band of a semiconductor. This form of Kirchhoff law can be used to model (i) thermal emission by nonisothermal finite-size bodies, (ii) thermal emission by bodies with carriers at different temperatures, and (iii) spontaneous emission by semiconductors under optical (photoluminescence) or electrical pumping (electroluminescence). Finally, we show that the reciprocity relation connecting light-emitting diodes and photovoltaic cells derived by Rau is a particular case of the local Kirchhoff law.
1
Rau’s reciprocity relation between light-emitting diodes and photovoltaic cells is shown to be a special case of the local Kirchhoff law.
2
The equality is extended to systems whose subsystems are each in local thermodynamic equilibrium but have different temperatures or carrier populations.
3
The local law enables modeling emission from nonisothermal finite bodies, bodies with carriers at different temperatures, and optically or electrically pumped semiconductors.
4
The paper introduces a local Kirchhoff law equating local absorption and thermal emission rates per unit volume.

light-emitting nonequilibrium bodies, including nonisothermal bodies and semiconductors with subsystems at different temperatures or Fermi levels

the local equality between absorption and thermal or spontaneous emission rates per unit volume under local thermodynamic equilibrium and nonequilibrium carrier conditions

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2018-04-06
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Authors
Jean‐Jacques Greffet
Patrick Bouchon
Giovanni Brucoli
François Marquier
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