4.8 Article

Scaling-Up of Thin-Film Photoelectrodes for Solar Water Splitting Based on Atomic Layer Deposition

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 15, 期 1, 页码 1138-1147

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.2c18480

关键词

atomic layer deposition; computational fluid dynamics; film uniformity; scaling-up; photoelectrochemical water splitting

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This paper describes the design and realization of a simple ALD chamber configuration for large-size photoelectrodes. A circular baffle redistributor was proposed to ensure uniform gas flow and temperature profile during film growth. By using this design, large-area protective films with good uniformity were achieved, enabling the fabrication of large-scale photocathodes with high performance.
Atomic layer deposition (ALD) is an established method to prepare protective layers for Si-based photoelectrodes for photo electrochemical (PEC) water splitting. Although ALD has been widely used in microelectronics and photovoltaics, it remains a great challenge to design simple and effective ALD systems to deposit large and uniform protective films for Si-based photoelectrodes with industrial sizes. This paper describes the design and realization of a simple ALD chamber configuration for photoelectrodes with large sizes, in which the influence of a gas redistributor over the gas flow and heat transfer during film growth was revealed by computational fluid dynamics simulations and experimental investigations. A simple circular baffle-type redistributor was proposed to establish a uniform gas flow field throughout the ALD reactor, resulting in a uniform temperature profile. With this simple baffle redistributor, the large-area Al2O3 monitor film (46 nm thickness) reached a good nonuniformity (Nu %) of 0.88% over a large area of 256 cm2. This design enables the fabrication of large-scale photocathodes from standard industrial-grade 166 mm Si(100) wafers (276 cm2) by depositing 50 nm TiO2 protective films with Nu % less than 5%. The obtained photocathode achieves a saturation current of 6.45 A with a hydrogen production rate of 43.2 mL/min under outdoor illumination. This work elucidates how flow pattern and heat transfer may influence the deposition of protective layers over large photoelectrodes, providing guidance for future industrial applications of PEC water splitting.

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