School of Environmental and Chemical Engineering, Shanghai University , Shanghai 200444, China.
Shanghai Electrochemical Energy Devices Research Center, School of Chemistry and Chemical Engineering and State Key Laboratory of Metal Matrix Composites, Shanghai Jiao Tong University , Shanghai 200240, China.
ACS Appl Mater Interfaces. 2017 Aug 23;9(33):27607-27617. doi: 10.1021/acsami.7b05418. Epub 2017 Aug 11.
Platinum (Pt)-based alloys are considerably promising electrocatalysts for the reduction of I/I and Co/Co redox couples in dye-sensitized solar cells (DSSCs). However, it is still challenging to minimize the dosage of Pt to achieve comparable or even higher catalytic efficiency. Here, by taking full advantages of the Mott-Schottky (M-S) effect at the metal-semiconductor interface, we successfully strategize a low-Pt-based M-S catalyst with enhanced electrocatalytic performance and stability for the large-scale application of DSSCs. The optimized M-S electrocatalyst of NiS-PtX (X = Fe, Ni) heteronanorods is constructed by rationally controlling the ratio of Pt to transition metal in the hybrids. It was found that the electrons transferred from NiS to PtX at their interface under the Mott-Schottky effect result in the concentration of electrons onto PtX domains, which subsequently accelerates the regeneration of both I/I and Co/Co redox shuttles in DSSCs. As a result, the DSSC with NiS-PtFe manifests an impressive power conversion efficiency (PCE) of 8.79% and 5.56% for iodine and cobalt-based electrolyte under AM1.5G illumination, respectively. These PCEs are obviously superior over those with NiS-Pt, PtFe, NiS, and pristine Pt electrodes. The strategy reported here is able to be further expanded to fabricate other low-Pt-alloyed M-S catalysts for wider applications in the fields of photocatalysis, water splitting, and heterojunction solar cells.
基于铂(Pt)的合金是在染料敏化太阳能电池(DSSCs)中还原 I/I 和 Co/Co 氧化还原对的极具前景的电催化剂。然而,仍然具有挑战性的是,将 Pt 的用量最小化以实现可比甚至更高的催化效率。在这里,通过充分利用金属半导体界面的Mott-Schottky(M-S)效应,我们成功地设计了一种基于低 Pt 的 M-S 催化剂,具有增强的电催化性能和稳定性,可用于 DSSCs 的大规模应用。通过合理控制混合物中 Pt 与过渡金属的比例,成功构建了优化的 NiS-PtX(X=Fe、Ni)异质纳米棒 M-S 电催化剂。研究发现,M-S 效应下 NiS 向 PtX 界面转移的电子导致 PtX 区域的电子浓度增加,从而加速了 DSSCs 中 I/I 和 Co/Co 氧化还原穿梭的再生。结果,在 AM1.5G 光照下,基于碘和钴电解质的 NiS-PtFe DSSC 的功率转换效率(PCE)分别达到了 8.79%和 5.56%,明显优于 NiS-Pt、PtFe、NiS 和原始 Pt 电极的 PCE。这里报道的策略能够进一步扩展到制造其他低 Pt 合金 M-S 催化剂,以更广泛地应用于光催化、水分解和异质结太阳能电池领域。