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Accelerating materials development for photoelectrochemical hydrogen production: Standards for methods, definitions, and reporting protocols

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TLDR
In this paper, a flow chart with standard procedures for PEC characterization techniques for planar photoelectrode materials (i.e., not suspensions of particles) with a focus on single band gap absorbers is presented.
Abstract
Photoelectrochemical (PEC) water splitting for hydrogen production is a promising technology that uses sunlight and water to produce renewable hydrogen with oxygen as a by-product. In the expanding field of PEC hydrogen production, the use of standardized screening methods and reporting has emerged as a necessity. This article is intended to provide guidance on key practices in characterization of PEC materials and proper reporting of efficiencies. Presented here are the definitions of various efficiency values that pertain to PEC, with an emphasis on the importance of solar-to-hydrogen efficiency, as well as a flow chart with standard procedures for PEC characterization techniques for planar photoelectrode materials (i.e., not suspensions of particles) with a focus on single band gap absorbers. These guidelines serve as a foundation and prelude to a much more complete and in-depth discussion of PEC techniques and procedures presented elsewhere.

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Conduction mechanism in mesoporous hematite thin films using low temperature electrical measurements and theoretical electronic band structure calculations

TL;DR: In this paper, the surface morphology revealed the porous nanostructures with necked particle size ranging from 17-nm to 23-nm and it has an estimated band gap about 2.2-eV with enhanced photocurrent (16.73%) properties.

Light induced water splitting using multijunction thin film silicon solar cells

TL;DR: In this paper, the authors proposed a photoelectrochemical generation of hydrogen from water and sunlight, which is a promising and elegant means to store renewable energy and has been attracting considerable interest among research groups worldwide.
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A comprehensive review on the electrochemical parameters and recent material development of electrochemical water splitting electrocatalysts

TL;DR: In this paper , a review of the recent developments in metal and metalloid HER and OER electrocatalysts from the s, p and d block elements is presented.
Journal ArticleDOI

Utilizing Band Diagrams To Interpret the Photovoltage and Photocurrent in Photoanodes: A Semiclassical Device Modeling Study

TL;DR: In this article, the photovoltage and photocurrent both serve as important design metrics when assessing the performance of photoanodes within photoelectrochemical cells and wide disagreement persist.
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How do bubbles affect light absorption in photoelectrodes for solar water splitting?

TL;DR: In this article , the authors quantified the optical losses due to gas bubbles present on the surface of photoelectrodes in a photo-electrochemical cell by simulating the area-averaged and local variation in light absorption.
References
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Journal ArticleDOI

Electrochemical Photolysis of Water at a Semiconductor Electrode

TL;DR: Water photolysis is investigated by exploiting the fact that water is transparent to visible light and cannot be decomposed directly, but only by radiation with wavelengths shorter than 190 nm.
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Optical Properties and Electronic Structure of Amorphous Germanium

TL;DR: In this article, the optical constants of amorphous Ge were determined for the photon energies from 0.08 to 1.6 eV, and the absorption is due to k-conserving transitions of holes between the valence bands as in p-type crystals.
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Powering the planet: Chemical challenges in solar energy utilization

TL;DR: Solar energy is by far the largest exploitable resource, providing more energy in 1 hour to the earth than all of the energy consumed by humans in an entire year, and if solar energy is to be a major primary energy source, it must be stored and dispatched on demand to the end user.
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Conduction in non-crystalline systems V. Conductivity, optical absorption and photoconductivity in amorphous semiconductors

TL;DR: In this article, the experimental evidence concerning the density of states in amorphous semiconductors and the ranges of energy in which states are localized is reviewed; this includes d.c and a.c. conductivity, drift mobility and optical absorption.
Journal ArticleDOI

New contributions to the optics of intensely light-scattering materials.

TL;DR: In this paper, the Gurevic and Judd formulas were derived from the Kubelka-Munk differential equations, and they are exact under the same conditions as in this paper, that is, when the material is perfectly dull and when the light, is perfectly diffused or if it is parallel and hits the specimen under an angle of 60° from normal.
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