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Open AccessJournal ArticleDOI

Photonic crystal microcrystalline silicon solar cells

TLDR
In this paper, a method to incorporate photonic crystal structures into thin-film microcrystalline silicon photovoltaic layers while suppressing undesired defects formed in the microcrystaline silicon was proposed.
Abstract
Enhancing the absorption of thin-film microcrystalline silicon solar cells over a broadband range in order to improve the energy conversion efficiency is a very important challenge in the development of low cost and stable solar energy harvesting. Here, we demonstrate that a broadband enhancement of the absorption can be achieved by creating a large number of resonant modes associated with two-dimensional photonic crystal band edges. We utilize higher-order optical modes perpendicular to the silicon layer, as well as the band-folding effect by employing photonic crystal superlattice structures. We establish a method to incorporate photonic crystal structures into thin-film (~500 nm) microcrystalline silicon photovoltaic layers while suppressing undesired defects formed in the microcrystalline silicon. The fabricated solar cells exhibit 1.3 times increase of a short circuit current density (from 15.0 mA/cm2 to 19.6 mA/cm2) by introducing the photonic crystal structure, and consequently the conversion efficiency increases from 5.6% to 6.8%. Moreover, we theoretically analyze the absorption characteristics in the fabricated cell structure, and reveal that the energy conversion efficiency can be increased beyond 9.5% in a structure less than 1/400 as thick as conventional crystalline silicon solar cells with an efficiency of 24%. © 2015 The Authors. Progress in Photovoltaics: Research and Applications published by John Wiley & Sons Ltd.

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Citations
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Journal ArticleDOI

Silicon solar cells: toward the efficiency limits

TL;DR: The photovoltaic conversion of solar energy starts to give an appreciable contribution to power generation in many countries, with more than 90% of the global PV market relying on solar cells base.
Journal ArticleDOI

Broadband absorption enhancement in plasmonic nanoshells-based ultrathin microcrystalline-Si solar cells

TL;DR: The role of plasmonic nanoshells, embedded within a ultrathin microcrystalline silicon solar cell, in enhancing broadband light trapping capability of the cell and, at the same time, to reduce the parasitic loss is investigated.
Journal ArticleDOI

Efficiency improvement of a silicon-based thin-film solar cell using plasmonic silver nanoparticles and an antireflective layer

TL;DR: In this paper, a silicon thin-film solar cell (TFSC) integrated with the silver nanoparticles is presented, which consists of anti-reflection, absorption and reflective layers in which the anti-reflective layer is made of pyramids of TiO2.
Journal ArticleDOI

Improved efficiency of ultra-thin µc-Si solar cells with photonic-crystal structures.

TL;DR: This work investigates the improvement of the conversion efficiency of ultra-thin microcrystalline silicon (μc-Si) solar cells incorporating photonic-crystal structures, where light absorption is strongly enhanced by the multiple resonant modes in the photonic crystal.
Journal ArticleDOI

A light-trapping strategy for nanocrystalline silicon thin-film solar cells using three-dimensionally assembled nanoparticle structures.

TL;DR: The multiple plasmon resonances, together with the antireflection functionality arising from the conformally deposited top surface of the 3D solar cell, lead to a 22% and an 11% improvement in power conversion efficiency of the nc-Si:H thin-film solar cells compared to flat cells and cells employing nanoparticle clusters, respectively.
References
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Journal ArticleDOI

Conversion of broadband to narrowband thermal emission through energy recycling

TL;DR: In this article, a thermal emission control device based on a multiple-quantum-well layer embedded in a two-dimensional photonic crystal was proposed to convert a broadband thermal emission spectrum into a narrowband spectrum with minimal loss of energy.
Journal ArticleDOI

Photonics: lasers producing tailored beams.

TL;DR: Photonic crystals are engineer to generate semiconductor lasers that produce a range of beam patterns while maintaining stable single-mode oscillation to contribute to the realization of compact lasers that are capable of producing diverse beam patterns on demand.
Journal ArticleDOI

Thin-film poly-Si solar cells on glass substrate fabricated at low temperature

TL;DR: In this article, the performances of thin-film poly-Si solar cells with a thickness of less than 5μm on a glass substrate have been investigated, where the active i-type polySi layer was fabricated by plasma chemical vapor deposition (CVD) at low temperature.
Journal ArticleDOI

A study of thin silicon dioxide films using infrared absorption techniques

TL;DR: In this article, a series of silicon dioxide (SiO2) films grown on silicon wafers from a HCl and O2 gas mixture at 850°C, have been studied for film thicknesses down to 28 A. The validity of Lambert Bouguer's Law for such thin films has been confirmed, and the apparent absorption coefficient calculated for the absorption at 1065 cm−1 is in good agreement with previously published data for thicker, vapordeposited, and thermally grown films.
Journal ArticleDOI

Impact of front and rear texture of thin-film microcrystalline silicon solar cells on their light trapping properties

TL;DR: In this paper, the effect of front and rear texture of thin-film microcrystalline silicon solar cells on light trapping was evaluated by characterizing solar cell specimens with both superstrate ( p - i - n ) and substrate ( n - i- p ) configurations that have a variety of surface morphologies including intentionally polished flat surfaces.
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