Fundamentals of Solar Cell Design. Rajender Boddula
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Название: Fundamentals of Solar Cell Design

Автор: Rajender Boddula

Издательство: John Wiley & Sons Limited

Жанр: Физика

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isbn: 9781119725046

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СКАЧАТЬ 18% (DSSCs, PECs) [7, 17, 93–101] Third generation: Hybrid DSSCs, PECs, quantum dot, perovskites, plasmonic solar cells ~ 30% [7, 102–104] Fourth generation: Multijunction solar cells with GaAs, InP and other intermediate layer ~ 47% (multijunction GaAs) [7, 105–112]

      2.1.1 Plasmonic Nanostructure

Schematic illustration of the surface plasmon resonance.

      2.1.2 Classification of Plasmonic Nanostructures

Schematic illustration of the utilization of plasmonic nanoparticle (upper) and thin film (lower) for solar cells.

      2.2.1 Working Principle

      A plasmonic nanostructure can be used as direct and indirect applications such as active PV material and plasmon modified active semiconductor, respectively [29]. The fundamental operational principle of plasmonic solar cell is scattering through SPR in metallic nanoparticles on semiconductor and surface plasmon polaritons at the metal/semiconductor interface.

      where εp and εm correspond to dielectric function of metal nanoparticle and medium, respectively. Lx stands for depolarization factor and depends on shape of nanoparticle. The polarizability of spherical metal nanoparticle becomes maximum when resonance occurs. εp can be defined as Equation (2.2):

      Plasmon frequency (ωp) is defined as Equation (2.3). It depends on free electrons in spherical particles. For example, gold, silver, copper, and aluminum show the resonance frequency in visible, UV, visible and UV, respectively. A gold show broader resonance peak than silver and it is highly stable where as silver is highly unstable [35]:

      where N, e, me, and ε0 correspond to free electron density, charge of electron, electron’s effective mass, and dielectric constant in free space, respectively.

      A СКАЧАТЬ