Promoting formic acid oxidation performance of Pd nanoparticles via Pt and Ru atom mediated surface engineering

被引:21
作者
Bhalothia, Dinesh [1 ]
Huang, Tzu-Hsi [2 ]
Chou, Pai-Hung [2 ]
Wang, Kuan-Wen [2 ]
Chen, Tsan-Yao [1 ,3 ]
机构
[1] Natl Tsing Hua Univ, Dept Engn & Syst Sci, Hsinchu 30013, Taiwan
[2] Natl Taipei Univ Technol, Dept Mat & Mineral Resources Engn, Taipei 10608, Taiwan
[3] Natl Cheng Kung Univ, Hierarch Green Energy Mat HiGEM Res Ctr, Tainan 70101, Taiwan
关键词
ELECTROCATALYTIC OXIDATION; CATALYTIC-ACTIVITY; ELECTROOXIDATION; EFFICIENT; METHANOL; PLATINUM; CO; NANOFRAMES; STABILITY; NANOTUBES;
D O I
10.1039/d0ra01303j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The alteration of surface functional properties via incorporation of foreign atoms is supposed to be a key strategy for the enhanced catalytic performance of noble-metal based nanocatalysts (NCs). In the present study, carbon-supported palladium (Pd)-based NCs including Pd, PdPt and PdRuPt have been prepared via a polyol reduction method under the same reduction conditions as for formic acid oxidation reaction (FAOR) applications. By cross-referencing the results of the microscopic, spectroscopic and electrochemical analysis we demonstrated that adding a small amount of platinum (Pt) into Pd NCs (i.e. PdPt NCs) significantly promotes the FAOR performance as compared to that of Pd NCs via weakening the COads bond strength at a lower voltage (0.875 V vs. NHE) than Pd (0.891 V vs. NHE). Of special relevance, the PdPt NC shows a mass activity (MA) of 1.0 A mg(-1) and 1.9 A mg(-1), respectively, in the anodic and cathodic scan. These values are similar to 1.7-fold (0.6 A mg(-1)) and similar to 4.8-fold (0.4 A mg(-1)) higher than those of Pd NC. Moreover, PdPt NC retains a higher MA (54 mA mg(-1)) than that of Pd NC (9 mA mg(-1)) after chronoamperometric (CA) stability tests over 2000 s. Meanwhile, further addition of ruthenium (Ru) (i.e. PdRuPt NCs) outstandingly enhances the CO tolerance during the CA test via removal of adsorbed COads and thus shows the highest MA (62 mA mg(-1)) after CA testing, which is higher than that of PdPt (54 mA mg(-1)) and Pd (9 mA mg(-1)) NCs. The intriguing results obtained in this study have great significance to provide further strategic opportunities for tuning the surface electronic properties of Pd-based NCs to design Pd-based NCs with improved electrochemical performance.
引用
收藏
页码:17302 / 17310
页数:9
相关论文
共 53 条
[21]   Ultrathin AgPt alloy nanowires as a high-performance electrocatalyst for formic acid oxidation [J].
Jiang, Xian ;
Fu, Gengtao ;
Wu, Xia ;
Liu, Yang ;
Zhang, Mingyi ;
Sun, Dongmei ;
Xu, Lin ;
Tang, Yawen .
NANO RESEARCH, 2018, 11 (01) :499-510
[22]   Platinum and Palladium Over layers Dramatically Enhance the Activity of Ruthenium Nanotubes for Alkaline Hydrogen Oxidation [J].
John, Samuel St. ;
Atkinson, Robert W., III ;
Unocic, Kinga A. ;
Unocic, Raymond R. ;
Zawodzinski, Thomas A., Jr. ;
Papandrew, Alexander B. .
ACS CATALYSIS, 2015, 5 (11) :7015-7023
[23]   Drug Repositioning to Alleviate Systemic Inflammatory Response Syndrome Caused by Gram-Negative Bacterial Outer Membrane Vesicles [J].
Kim, Ji Hyun ;
Lee, Jaewook ;
Park, Kyong-Su ;
Hong, Sung-Wook ;
Gho, Yong Song .
ADVANCED HEALTHCARE MATERIALS, 2018, 7 (13)
[24]   Trimetallic Synergy in Intermetallic PtSnBi Nanoplates Boosts Formic Acid Oxidation [J].
Luo, Shuiping ;
Chen, Wen ;
Cheng, Yu ;
Song, Xing ;
Wu, Qilong ;
Li, Lanxi ;
Wu, Xiaotong ;
Wu, Tianhao ;
Li, Mingrui ;
Yang, Qi ;
Deng, Kerong ;
Quan, Zewei .
ADVANCED MATERIALS, 2019, 31 (40)
[25]   PdM nanoparticles (M = Ni, Co, Fe, Mn) with high activity and stability in formic acid oxidation synthesized by sonochemical reactions [J].
Matin, Md. Abdul ;
Jang, Ji-Hoon ;
Kwon, Young-Uk .
JOURNAL OF POWER SOURCES, 2014, 262 :356-363
[26]   Oleylamine-Mediated Synthesis of Pd Nanoparticles for Catalytic Formic Acid Oxidation [J].
Mazumder, Vismadeb ;
Sun, Shouheng .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2009, 131 (13) :4588-+
[27]   Glycerol and formic acid electro-oxidation over Pt on S-doped carbon nanotubes: Effect of carbon support and synthesis method on the metal-support interaction [J].
Ning, Xiaomei ;
Zhou, Xiaosong ;
Luo, Jin ;
Ma, Lin ;
Xu, Xuyao ;
Zhan, Liang .
ELECTROCHIMICA ACTA, 2019, 319 :129-137
[28]   Dispersion effect in formic acid oxidation on PtAu/C nanocatalyst prepared by water-in-oil microemulsion method [J].
Pajic, M. N. Krstajic ;
Stevanovic, S. I. ;
Radmilovic, V. V. ;
Gavrilovic-Wohlmuther, A. ;
Zabinski, P. ;
Elezovic, N. R. ;
Radmilovic, V. R. ;
Gojkovic, S. Lj. ;
Jovanovic, V. M. .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2019, 243 :585-593
[29]   Ultrathin Pt-Zn Nanowires: High-Performance Catalysts for Electrooxidation of Methanol and Formic Acid [J].
Pei, Jiajing ;
Mao, Junjie ;
Liang, Xin ;
Zhuang, Zhongbin ;
Chen, Chen ;
Peng, Qing ;
Wang, Dingsheng ;
Li, Yadong .
ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2018, 6 (01) :77-81
[30]   One-pot synthesis of Au@Pt star-like nanocrystals and their enhanced electrocatalytic performance for formic acid and ethanol oxidation [J].
Peng, Yi ;
Li, Lidong ;
Tao, Ran ;
Tan, Lingyu ;
Qiu, Mengna ;
Guo, Lin .
NANO RESEARCH, 2018, 11 (06) :3222-3232