Electrical and Computer Engineering, University of Missouri, Columbia, MO 65211, USA.
Nanotechnology. 2012 Dec 7;23(48):485405. doi: 10.1088/0957-4484/23/48/485405. Epub 2012 Nov 9.
This paper presents a detailed electrochemical impedance spectroscopy and cyclic voltammetry (CV) investigation into the electrocatalytic activity of ultrafine (i.e., smaller than 2 nm) platinum (Pt) nanoparticles generated on a fluorine-doped tin oxide (FTO) surface via room temperature tilted target sputter deposition. In particular, the Pt-decorated FTO electrode surfaces were tested as counter electrode candidates for triiodide (I3(-)) reduction in dye-sensitized solar cells (DSSCs). We observed a direct correlation between size-dependent Pt nanoparticle crystallinity and the I3(-) reduction activity underlying DSSC performance. CV analysis confirmed the higher electrocatalytic activities of sputter-deposited crystalline Pt nanoparticles (1-2 nm) compared with either sub-nanometre Pt clusters or a continuous Pt thin film. While the low catalytic activity and DSSC performance of Pt clusters smaller in size than 1 nm is believed to arise from their non-crystalline nature and charge-trapping attributes, we attribute the high catalytic performance of larger Pt nanoparticles in the 1-2 nm regime to their well-defined crystallinity and fast electron transfer kinetics. For DSSC applications, the optimized Pt loading was calculated to be ~2.54 × 10(-7) g cm(-2), which corresponds to surface coverage by ~1.6 nm sized Pt nanoparticles.
本文通过室温倾斜靶溅射沉积在掺氟氧化锡(FTO)表面上生成的超细(即小于 2nm)铂(Pt)纳米粒子进行详细的电化学阻抗谱和循环伏安(CV)研究,研究其电催化活性。特别是,Pt 修饰的 FTO 电极表面被测试为染料敏化太阳能电池(DSSC)中三碘化物(I3(-))还原的对电极候选物。我们观察到尺寸依赖性 Pt 纳米颗粒结晶度与 DSSC 性能下的 I3(-)还原活性之间存在直接相关性。CV 分析证实,与亚纳米 Pt 团簇或连续 Pt 薄膜相比,溅射沉积的结晶 Pt 纳米粒子(1-2nm)具有更高的电催化活性。虽然尺寸小于 1nm 的 Pt 团簇的低催化活性和 DSSC 性能归因于其非晶态性质和电荷捕获特性,但我们将较大 Pt 纳米粒子在 1-2nm 范围内的高催化性能归因于其明确的结晶度和快速的电子转移动力学。对于 DSSC 应用,计算出的优化 Pt 负载量为2.54×10(-7)g cm(-2),这对应于1.6nm 尺寸的 Pt 纳米粒子的表面覆盖率。