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Published on: February 23, 2017
Interface Electronic Microenvironment Engineering in Pt@UiO-66 Composites for Regulating Interfacial Charge Transfer
Junjie Chen1, Mixiang Qi2, Shuxuan Wang2
1State Key Laboratory of Applied Organic Chemistry and Key Laboratory of Nonferrous Metals Chemistry and Resources Utilization of Gansu Province, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000, P. R. China.
Abstract:
Interface electronic microenvironment engineering has emerged as a promising yet underexplored strategy for regulating interfacial charge transfer and molecular recognition in functional nanocomposites. Herein, we report a mechanism-guided interface engineering approach by constructing a series of core-shell Pt@UiO-66-X composites (X = H, NH2, SO3H), in which linker functionalization is used to tune the local electronic and chemical environment surrounding Pt nanoparticles in a confined MOF matrix. Comprehensive experimental analyses supported by qualitative density functional theory (DFT) calculations indicate that the NH2-functionalized framework provides an electron-rich local environment together with a multipoint hydrogen-bonding network. This combined configuration favors AA adsorption on the functionalized UiO-66-NH2 model and facilitates Pt-assisted electrocatalytic response in the composite. Compared with electron-neutral and electron-withdrawing linkers, the NH2-functionalized composite exhibits stronger AA recognition, improved charge-transfer behavior, and reliable operational stability. As a representative electrochemical probe, ascorbic acid is employed to validate this proof-of-concept interface design strategy. The present study provides mechanistic insight into how linker electronic properties influence adsorption, molecular recognition, and electrochemical response in Pt@MOF composites, offering a potentially generalizable approach for related MOF-based interfacial systems rather than a fully universal design paradigm.
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