Departamento de Química Física, Instituto de Materiales y Nanotecnología , Universidad de La Laguna , Apdo. 456 , 38206 La Laguna , Santa Cruz de Tenerife , Spain.
Instituto de Electroquímica , Universidad de Alicante , Apartado 99 , 03080 Alicante , Spain.
J Am Chem Soc. 2018 Mar 14;140(10):3791-3797. doi: 10.1021/jacs.8b00588. Epub 2018 Mar 2.
Direct ethanol fuel cells are one of the most promising electrochemical energy conversion devices for portable, mobile and stationary power applications. However, more efficient and stable and less expensive electrocatalysts are still required. Interestingly, the electrochemical performance of the electrocatalysts toward the ethanol oxidation reaction can be remarkably enhanced by exploiting the benefits of structural and compositional sensitivity and control. Here, we describe the synthesis, characterization, and electrochemical behavior of cubic Pt-Sn nanoparticles. The electrochemical activity of the cubic Pt-Sn nanoparticles was found to be about three times higher than that obtained with unshaped Pt-Sn nanoparticles and six times higher than that of Pt nanocubes. In addition, stability tests indicated the electrocatalyst preserves its morphology and remains well-dispersed on the carbon support after 5000 potential cycles, while a cubic (pure) Pt catalyst exhibited severe agglomeration of the nanoparticles after a similar stability testing protocol. A detailed analysis of the elemental distribution in the nanoparticles by STEM-EELS indicated that Sn dissolves from the outer part of the shell after potential cycling, forming a ∼0.5 nm Pt skin. This particular atomic composition profile having a Pt-rich core, a Sn-rich subsurface layer, and a Pt-skin surface structure is responsible for the high activity and stability.
直接乙醇燃料电池是最有前途的电化学能量转换设备之一,可用于便携式、移动式和固定式电源应用。然而,仍然需要更高效、更稳定和更便宜的电催化剂。有趣的是,通过利用结构和组成敏感性和控制的优势,可以显著提高电催化剂对乙醇氧化反应的电化学性能。在这里,我们描述了立方 Pt-Sn 纳米颗粒的合成、表征和电化学行为。发现立方 Pt-Sn 纳米颗粒的电化学活性比未成型的 Pt-Sn 纳米颗粒高约 3 倍,比 Pt 纳米立方体高 6 倍。此外,稳定性测试表明,电催化剂在 5000 个电位循环后保持其形态并在碳载体上良好分散,而类似的稳定性测试方案后,立方(纯)Pt 催化剂表现出纳米颗粒的严重团聚。通过 STEM-EELS 对纳米颗粒中元素分布的详细分析表明,Sn 在电位循环后从壳的外部溶解,形成约 0.5nm 的 Pt 皮。这种特殊的原子组成分布,具有富 Pt 的核心、富 Sn 的次表面层和 Pt 皮表面结构,是高活性和稳定性的原因。