Ding Zetao, Cheng Qingqing, Zou Liangliang, Fang Jianhui, Zou Zhiqing, Yang Hui
Department of Chemistry, College of Science, Shanghai University, Shanghai, 200444, China.
Chem Commun (Camb). 2017 Dec 12;53(99):13233-13236. doi: 10.1039/c7cc08151k.
Chemical and electrochemical corrosion of a support limits the corresponding catalyst's performance and lifetime. In this paper, uniform TiN nanotubes are synthesized via coaxial-electrospinning, thermal oxidation and nitridation. The average diameter of nanotubes can be facilely controlled by tuning the parameters of coaxial electrospinning. The TiN nanotubes are modified further with Pt nanoparticles as Pt/TiN NT electrocatalysts. After accelerated durability tests, the electrochemical surface area (ECSA) and mass activity of the Pt/TiN decrease by only 6% and 14% respectively, while those of the Pt/C decrease by 44% and 46.2% respectively. The enhanced activity is attributed to the strong interaction between the Pt nanoparticles and the TiN support, which is confirmed by the X-ray dispersive spectra of Pt 4f.
载体的化学腐蚀和电化学腐蚀会限制相应催化剂的性能和寿命。本文通过同轴静电纺丝、热氧化和氮化合成了均匀的TiN纳米管。通过调节同轴静电纺丝的参数可以轻松控制纳米管的平均直径。用Pt纳米颗粒对TiN纳米管进行进一步修饰,制成Pt/TiN NT电催化剂。经过加速耐久性测试后,Pt/TiN的电化学表面积(ECSA)和质量活性分别仅下降6%和14%,而Pt/C的电化学表面积和质量活性分别下降44%和46.2%。活性增强归因于Pt纳米颗粒与TiN载体之间的强相互作用,Pt 4f的X射线色散光谱证实了这一点。