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Open AccessJournal ArticleDOI

Efficient direct solar-to-hydrogen conversion by in situ interface transformation of a tandem structure

TLDR
The approach of direct hydrogen generation by photoelectrochemical water splitting utilizes customized tandem absorber structures to mimic the Z-scheme of natural photosynthesis, yielding photocurrents approaching the theoretical limit of the absorber and results in a solar-to-hydrogen efficiency of 14%.
Abstract
Photosynthesis is nature’s route to convert intermittent solar irradiation into storable energy, while its use for an industrial energy supply is impaired by low efficiency. Artificial photosynthesis provides a promising alternative for efficient robust carbon-neutral renewable energy generation. The approach of direct hydrogen generation by photoelectrochemical water splitting utilizes customized tandem absorber structures to mimic the Z-scheme of natural photosynthesis. Here a combined chemical surface transformation of a tandem structure and catalyst deposition at ambient temperature yields photocurrents approaching the theoretical limit of the absorber and results in a solar-to-hydrogen efficiency of 14%. The potentiostatically assisted photoelectrode efficiency is 17%. Present benchmarks for integrated systems are clearly exceeded. Details of the in situ interface transformation, the electronic improvement and chemical passivation are presented. The surface functionalization procedure is widely applicable and can be precisely controlled, allowing further developments of high-efficiency robust hydrogen generators.

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Journal ArticleDOI

Recent developments in heterogeneous photocatalysts for solar-driven overall water splitting

TL;DR: In this article, a review summarizes the basics of overall water splitting via both one-step excitation and Z-scheme processes, with a focus on standard methods of determining photocatalytic performance.
Journal ArticleDOI

Semiconducting materials for photoelectrochemical energy conversion

TL;DR: Recently developed semiconductor materials for the direct conversion of light into fuels are scrutinized with respect to their atomic constitution, electronic structure and potential for practical performance as photoelectrodes in PEC cells.
Journal ArticleDOI

Photoelectrochemical devices for solar water splitting – materials and challenges

TL;DR: Strategies to address the challenges for materials development in this area, such as the adoption of smart architectures, innovative device configuration design, co-catalyst loading, and surface protection layer deposition, are outlined throughout the text, to deliver a highly efficient and stable PEC device for water splitting.
Journal ArticleDOI

Mesoporous materials for energy conversion and storage devices

TL;DR: A review of mesoporous materials can be found in this paper, where the authors summarize the primary methods for preparing mesopore materials and discuss their applications as electrodes and/or catalysts in solar cells, solar fuel production, rechargeable batteries, supercapacitors and fuel cells.
Journal ArticleDOI

Toward practical solar hydrogen production - an artificial photosynthetic leaf-to-farm challenge.

TL;DR: A critical assessment of the key components needed to scale up PEC water splitting systems such as materials efficiency, cost, elemental abundancy, stability, fuel separation, device operability, cell architecture, and techno-economic aspects of the systems are placed on.
References
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Journal ArticleDOI

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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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Journal ArticleDOI

Detailed Balance Limit of Efficiency of p‐n Junction Solar Cells

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Journal ArticleDOI

Band parameters for III–V compound semiconductors and their alloys

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