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Bio-inspired synthesis of mesoporous HfO2 nanoframes as reactors for piezotronic polymerization and Suzuki coupling reactions

机译:仿生合成介孔HfO2nanoframes作为piezotronic反应堆聚合和铃木耦合反应

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Complex nanostructures with high compositional and structural tailorability are highly desired in order to meet the material needs in the rapid development of nanoscience and nanotechnology. Therefore, the synthetic technique is of essential importance but currently still suffers from many challenges. Herein, we elaborately explore and demonstrate the flexibility of the anisotropic metallo-organic compound (dihafnium dichloride, Cp2HfCl2) for the fabrication of inorganic architectures by mimicking the assembly behaviors in biomolecules. The open and discrete architectures of mesoporous HfO2 nanoframes were constructed via the self-assembly of precursor with acetone as solvent and ammonia as the basic source, but without any addition of auxiliary organic molecules, like surfactants, DAN or peptides. In addition, the nanostructures (hollow spheres, solid spheres, yolk-shells, aggregations and defect-rich nanoparticles) of HfO2 assemblies can be well manipulated by simply modulating the synthesis parameters. The marked difference in the chemical bonds by the different ligands resulted in discrepant hydrolysis and then specific directional bonds for the diversity of the resultant HfO2 assemblies. Interestingly, the HfO2 nanoframe exhibits enhanced piezoelectricity, and can be used as a microelectrode reactor to trigger the pseudo-electrochemical aniline polymerization reaction by introducing ultrasonic excitation to renew the surface charges. Moreover, as compared with nanoparticle catalysts, the palladium (Pd) loaded nanoframe reactor exhibits obvious enhanced catalytic performance for classical Suzuki coupling, benefiting from the structural advantages of the HfO2 frame. Our findings here can be expected to offer new perspectives to find suitable materials by understanding the analogy between materials chemistry and biomolecule chemistry.
机译:复杂的纳米结构成分和高结构可修整性是高度期望以满足物质需求的迅速纳米科学和纳米技术的发展。因此,合成技术必不可少的重要性,但目前仍然存在从许多挑战。探索和展示的灵活性各向异性的有机金属化合物(dihafnium二氯化,Cp2HfCl2)的制造无机架构通过模拟装配在生物分子的行为。体系结构的介孔HfO2 nanoframes通过自组装的前兆以丙酮为溶剂和氨为基本源,但是没有任何的辅助有机分子,如表面活性剂,丹或肽。球体,实心球体,yolk-shells、聚合和defect-rich纳米粒子)HfO2组件可以通过简单地调节好操作吗合成参数。不同配体的化学键导致矛盾的水解具体定向债券的多样性结果HfO2组件。HfO2 nanoframe展品增强压电,可以用作微电极触发反应堆pseudo-electrochemical苯胺聚合反应通过引入超声激励更新表面的指控。与钯纳米颗粒催化剂(Pd)加载nanoframe反应堆展品明显经典增强的催化性能铃木耦合,从结构中获益HfO2框架的优点。可以提供新的视角发现了什么合适的材料通过理解类比材料化学和生物分子之间化学。

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