Yang Mingjin, Sun Li-Peng, Chen Boxu, Liao Jingwen, Yuan Hai, Guan Bai-Ou
Guangdong Provincial Key Laboratory of Optical Fiber Sensing and Communication, Institute of Photonics Technology, Jinan University, Guangzhou 511443, People's Republic of China.
Nanotechnology. 2020 Oct 30;31(44):445602. doi: 10.1088/1361-6528/aba7e3. Epub 2020 Jul 21.
To address a challenge for decoration of noble metal nanoparticles (NMNPs)-shell on conducting polymer nanofiber (CPNF) electrodes (i.e. NMNP-shell/CPNF-core electrodes) for boosting electrochemical performances, a two-step strategy comprising chemical pre-deposition and electrochemical deposition is designed. The strategy shows a high universality in terms of the diversity of NMNP-shell elements (single-element: AgNP-shell, AuNP-shell, PtNP-shell, PdNP-shell; multi-element: Au/Pt/PdNP-shell) and the independence of conductive substrates of electrodes. The shells are composed of high-density NMNPs and have strong adhesion to CPNF-cores. It is demonstrated that in response to a specific applied electrical stimulus, the resulting low doping level of CPNFs facilitates the generation of high-density nucleation sites (small NMNPs) by chemical pre-deposition (as high capability of electron transfer and low resistance to electron transfer from CP chains to NM ions), which is indispensable for the formation of NMNP-shells on CPNF-cores by electrochemical deposition. The decoration of NMNP-shells can significantly enhance the electrochemical performances of CPNF electrodes. Moreover, the great practicality and reliability of NMNP-shell/CPNF-core electrodes in use as an electrocatalytic platform are confirmed. This universal strategy opens up a new avenue to construct high-dimension shell/core-nanostructured electrodes.
为应对在导电聚合物纳米纤维(CPNF)电极(即NMNP壳/CPNF核电极)上修饰贵金属纳米颗粒(NMNPs)壳层以提高电化学性能所面临的挑战,设计了一种包括化学预沉积和电化学沉积的两步策略。该策略在NMNP壳层元素的多样性(单元素:AgNP壳、AuNP壳、PtNP壳、PdNP壳;多元素:Au/Pt/PdNP壳)和电极导电基底的独立性方面具有高度通用性。壳层由高密度的NMNPs组成,并且与CPNF核具有很强的附着力。结果表明,响应特定的外加电刺激,通过化学预沉积(由于具有高电子转移能力以及从CP链到NM离子的低电子转移电阻),CPNFs的低掺杂水平有助于产生高密度的成核位点(小的NMNPs),这对于通过电化学沉积在CPNF核上形成NMNP壳层是必不可少的。NMNP壳层的修饰可以显著提高CPNF电极的电化学性能。此外,还证实了NMNP壳/CPNF核电极作为电催化平台在实际应用中的实用性和可靠性。这种通用策略为构建高维壳/核纳米结构电极开辟了一条新途径。