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Toward tuning the surface functionalization of small ceria nanoparticles

机译:调整小二氧化铈纳米颗粒的表面功能

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Understanding and controlling the performance of ceria nanoparticle (CNP) catalysts requires knowledge of the detailed structure and property of CNP surfaces and any attached functional groups. Here we report thermogravimetric analysis results showing that hydrothermally synthesized~30 nm CNPs are decorated with 12.9 hydroxyl groups per nm~2 of CNP surface. Quantum mechanical calculations of the density and distribution of bound surface groups imply a scaling relationship for surface group density that balances formal charges in the functionalized CNP system. Computational results for CNPs with only hydroxyl surface groups yield a predicted density of bound hydroxyl groups for ~30 nm CNPs that is ~33% higher than measured densities. Quantitative agreement between predicted and measured hydroxyl surface densities is achieved when calculations consider CNPs with both -OH and -O_x surface groups. For this more general treatment of CNP surface functionalizations, quantum mechanical calculations predict a range of stable surface group configurations that depend on the chemical potentials of O and H, and demonstrate the potential to tune CNP surface functionalizations by varying temperature and/or partial pressures of O_2 and H_2O.
机译:了解和控制二氧化铈纳米颗粒(CNP)催化剂的性能需要了解CNP表面以及任何连接的官能团的详细结构和性能。在这里,我们报告的热重分析结果表明,水热合成〜30 nm的CNPs被每nm〜2的CNP表面装饰有12.9个羟基。结合表面基团的密度和分布的量子力学计算暗示了表面基团密度的比例关系,该比例关系平衡了功能化CNP系统中的形式电荷。仅具有羟基表面基团的CNP的计算结果可得出〜30 nm CNP的结合羟基的预测密度,比测得的密度高33%。当计算考虑到同时带有-OH和-O_x表面基团的CNP时,可以在预测的和测量的羟基表面密度之间达成定量一致。对于这种对CNP表面功能化的更一般的处理,量子力学计算预测了一系列稳定的表面基团构型,这些构型取决于O和H的化学势,并证明了通过改变温度和/或分压来调节CNP表面功能化的潜力。 O_2和H_2O。

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