Rational Design of CdS QDs/CeO2 Nanocube S-Scheme Heterojunctions for Highly Efficient C2H4 Scavenging in Fresh Produce Preservation

Zining Xu , Yankun Zhou , Rong Li , Shenghang Peng , Qifan Zhang , Alex Aziz , Xiaohong Xia , Xuxing Chen

Energy & Environmental Materials ›› 2026, Vol. 9 ›› Issue (5) : e70275

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Energy & Environmental Materials ›› 2026, Vol. 9 ›› Issue (5) :e70275 DOI: 10.1002/eem2.70275
Research Article
Rational Design of CdS QDs/CeO2 Nanocube S-Scheme Heterojunctions for Highly Efficient C2H4 Scavenging in Fresh Produce Preservation
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Abstract

Effectively eliminating ethylene (C2H4) during postharvest phase and distribution of fruits and vegetables continues to pose a significant technical hurdle. Although S-scheme heterojunctions have shown promise in optimizing charge carrier separation and redox capacity for ethylene degradation, their catalytic efficiency is still limited by insufficient oxygen activation kinetics. Herein, a novel S-scheme heterojunction composed of CdS quantum dots and CeO2 nanocubes was first rationally designed and was innovatively constructed for the first time, leveraging the oxygen-affinitive characteristics of CeO2 and guided by DFT calculations to enhance interfacial charge transfer and oxygen activation. The optimized 10-CdS–CeO2 composite exhibited superior photocatalytic activity under visible light exposure, exhibited a quasi-first-order reaction rate reaching 1.72 min−1, 35 and 297 times higher than CdS and CeO2, respectively. Even under low-intensity illumination (50 mW·cm−2), complete ethylene degradation was observed within 4 min, surpassing all previous literature known to the authors. Mechanistic investigations via in situ irradiated XPS, UPS, PL, TRPL, and ESR confirmed strong interfacial interactions, efficient S-scheme charge separation, and accelerated O2 activation. The findings establish a reliable theoretical and experimental basis for guiding the development of next-generation high-performance photocatalysts for ethylene scavenging, providing a promising strategy for postharvest preservation of fruits and vegetables.

Keywords

CdS quantum dots / CeO2 nanocubes / ethylene degradation / photocatalysis / S-scheme heterojunction

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Zining Xu, Yankun Zhou, Rong Li, Shenghang Peng, Qifan Zhang, Alex Aziz, Xiaohong Xia, Xuxing Chen. Rational Design of CdS QDs/CeO2 Nanocube S-Scheme Heterojunctions for Highly Efficient C2H4 Scavenging in Fresh Produce Preservation. Energy & Environmental Materials, 2026, 9 (5) : e70275 DOI:10.1002/eem2.70275

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2026 The Author(s). Energy & Environmental Materials published by John Wiley & Sons Australia, Ltd on behalf of Zhengzhou University.

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