Morphology-Dependent Regulation of Au@CeO<sub>2</sub> Structure for Rational Design of Phosphatase-Like Nanozyme.

Wang, Yidan; Zhang, Feifan; Wang, Zexiang; Fu, Ruijie; Hou, Jinjie; Zhao, Mengliu; Bai, Hao; Xianyu, Yunlei · ACS Nano · 2026

basic_science · Level V

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Abstract

Nanozymes with multienzyme-like capabilities can function as self-catalytic reactors, exhibiting significant advantages over natural enzymes. However, it is still challenging to develop a general strategy to regulate the multienzyme-like activities of nanozymes and clarify their intricate catalytic mechanisms. Herein, we establish a seed-mediated strategy to modulate the multienzyme-like activities of gold@cerium oxide (Au@CeO<sub>2</sub>) by altering the morphology of gold seeds. The end-coated nanostructure exhibits superior phosphatase-like (POP-like) activity compared to the core@shell nanostructure. Through structure-activity correlation, we reveal that Lewis acidity (LA) and oxygen-vacancy density serve as key descriptors governing the POP-like activity, synergistically activating the phosphoester substrate and water nucleophile. This work elucidates the mechanisms underlying morphology-dependent catalytic regulation, offering a rational design strategy for developing hydrolase-mimicking nanozymes.

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