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Hierarchical triphase diffusion photoelectrodes for photoelectrochemical gas/liquid flow conversion

Nature Communications 2023 22 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 45 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Xiangyu Meng, Xiangyu Meng, Xiangyu Meng, Xiangyu Meng, Zehua Liu, Chuntong Zhu, Xin Wang, Chuntong Zhu, Xin Wang, Kuibo Yin, Xin Wang, Zehua Liu, Zehua Liu, Yueming Sun, Kuibo Yin, Kuibo Yin, Liuning Gu, Yueming Sun, Yueming Sun, Mengmeng Zhu, Liuning Gu, Yueming Sun, Yunqian Dai, Yunqian Dai, Kuibo Yin, Ran Long, Xiangyu Meng, Liuning Gu, Liuning Gu, Yujie Xiong Yujie Xiong Yujie Xiong Xinxing Shao, Yujie Xiong Xinxing Shao, Litao Sun, Litao Sun, Yueming Sun, Yueming Sun, Yueming Sun, Yunqian Dai, Yunqian Dai, Yujie Xiong Yujie Xiong

Summary

Researchers developed a new type of electrode that uses layered, porous fibers to improve how gas, liquid, and solid materials interact during solar-powered chemical reactions. The design achieved a 16-fold improvement in methane conversion rate, offering a more efficient approach for using sunlight to drive industrial chemical processes.

Photoelectrochemical device is a versatile platform for achieving various chemical transformations with solar energy. However, a grand challenge, originating from mass and electron transfer of triphase-reagents/products in gas phase, water/electrolyte/products in liquid phase and catalyst/photoelectrode in solid phase, largely limits its practical application. Here, we report the simulation-guided development of hierarchical triphase diffusion photoelectrodes, to improve mass transfer and ensure electron transfer for photoelectrochemical gas/liquid flow conversion. Semiconductor nanocrystals are controllably integrated within electrospun nanofiber-derived mat, overcoming inherent brittleness of semiconductors. The mechanically strong skeleton of free-standing mat, together with satisfactory photon absorption, electrical conductivity and hierarchical pores, enables the design of triphase diffusion photoelectrodes. Such a design allows photoelectrochemical gas/liquid conversion to be performed continuously in a flow cell. As a proof of concept, 16.6- and 4.0-fold enhancements are achieved for the production rate and product selectivity of methane conversion, respectively, with remarkable durability.

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