Dang Yang, Wang Guangtu, Su Gehong, Lu Zhiwei, Wang Yanying, Liu Tao, Pu Xiang, Wang Xianxiang, Wu Chun, Song Chang, Zhao Qingbiao, Rao Hanbing, Sun Mengmeng
Key Laboratory of Polar Materials and Devices, Ministry of Education, Department of Electronic Science, East China Normal University, Shanghai 200241, China.
ACS Nano. 2022 Mar 22;16(3):4536-4550. doi: 10.1021/acsnano.1c11012. Epub 2022 Mar 3.
Due to the lack of a general descriptor to predict the activity of nanomaterials, the current exploration of nanozymes mainly depended on trial-and-error strategies, which hindered the effective design of nanozymes. Here, with the help of a large number of Ni-O-Co bonds at the interface of heterostructures, a prediction descriptor was successfully determined to reveal the double enzyme-like activity mechanisms for Ni/CoMoO. Additionally, DFT calculations revealed that interface engineering could accelerate the catalytic kinetics of the enzyme-like activity. Ni-O-Co bonds were the main active sites for enzyme-like activity. Finally, the colorimetric signal and intelligent biosensor of Ni/CoMoO based on deep learning were used to detect organophosphorus and ziram sensitively. Meanwhile, the FTIR results uncovered the detection mechanism: the target molecules could block Ni-O-Co active sites at the heterostructure interface leading to the signal peak decreasing. This study not only provided a well design strategy for the further development of nanozymes or other advanced catalysts, but it also designed a multifunctional intelligent biosensor platform. Furthermore, it also provided preferable ideas regarding the catalytic mechanism and detection mechanism of heterostructure nanozymes.
由于缺乏预测纳米材料活性的通用描述符,目前对纳米酶的探索主要依赖于试错策略,这阻碍了纳米酶的有效设计。在此,借助异质结构界面处大量的Ni-O-Co键,成功确定了一个预测描述符,以揭示Ni/CoMoO的双酶样活性机制。此外,密度泛函理论(DFT)计算表明,界面工程可以加速酶样活性的催化动力学。Ni-O-Co键是酶样活性的主要活性位点。最后,基于深度学习的Ni/CoMoO比色信号和智能生物传感器被用于灵敏地检测有机磷和福美双。同时,傅里叶变换红外光谱(FTIR)结果揭示了检测机制:目标分子可以阻断异质结构界面处的Ni-O-Co活性位点,导致信号峰下降。该研究不仅为纳米酶或其他先进催化剂的进一步发展提供了良好的设计策略,还设计了一个多功能智能生物传感器平台。此外,它还为异质结构纳米酶的催化机制和检测机制提供了更好的思路。