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High-Temperature Atomic Mixing toward Well-Dispersed Bimetallic Electrocatalysts

机译:朝向分散良好的双金属电催化剂的高温原子混合

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摘要

Supported bimetallic alloy nanoparticles are of great interest in various catalytic applications due to the synergistic effects between different metals for improved catalytic performance. However, it still remains a challenge to efficiently synthesize atomically mixed alloy nanoparticles with uniform dispersion onto a desired substrate. Here, in situ, rapid synthesis of atomically mixed bimetallic nanoparticles well-dispersed on a conductive carbon network via a 1 s high-temperature pulse (HTP, approximate to 1550 K, duration 1 s, the rate of 10(4) K s(-1)) is reported. The high temperature facilitates the total ( atomic) mixing of different metals, while the rapid quenching ensures the uniform dispersion of nanoparticles with fine features such as twin boundaries and stacking faults, which are potentially beneficial to their catalytic performance. By varying the ratio of the precursor salts and parameters in the HTP process, the composition, size, and morphology of the resultant nanoparticles can easily be tuned. Moreover, the synthesized bimetallic (PdNi) nanoparticles demonstrate excellent electrocatalytic performance for the hydrogen evolution reaction and hydrogen peroxide electrooxidation. This work provides a general strategy for a facile and rapid synthesis of bimetallic nanoparticles directly from their salts for a range of emerging applications.
机译:负载的双金属合金纳米颗粒由于用于改善催化性能的不同金属之间的协同作用而在各种催化应用中引起了极大的兴趣。然而,仍然有效地将具有均匀分散性的原子混合合金纳米颗粒有效地合成到所需基材上仍然是一个挑战。在这里,通过1 s高温脉冲(HTP,大约1550 K,持续时间1 s,速率10(4)K s(),原位快速合成原子分散的双金属纳米粒子,使其充分分散在导电碳网络上-1))被报告。高温促进了不同金属的全部(原子)混合,而快速淬火则确保了具有精细特征(例如孪晶边界和堆积缺陷)的纳米颗粒的均匀分散,这潜在地有利于其催化性能。通过在HTP工艺中改变前体盐的比例和参数,可以轻松地调节所得纳米颗粒的组成,大小和形态。此外,合成的双金属(PdNi)纳米粒子表现出出色的电催化性能,用于氢气释放反应和过氧化氢电氧化。这项工作为直接从其盐中轻松快速合成双金属纳米颗粒提供了一种通用策略,可用于一系列新兴应用。

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