Achieving Ultra-High Selectivity to Hydrogen Production from Formic Acid on Pd-Ag Alloys

被引:46
|
作者
Karatok, Mustafa [1 ]
Ngan, Hio Tong [2 ]
Jia, Xiwen [1 ]
O'Connor, Christopher R. [1 ]
Boscoboinik, J. Anibal [3 ]
Stacchiola, Dario J. [3 ]
Sautet, Philippe [2 ,4 ]
Madix, Robert J. [5 ]
机构
[1] Harvard Univ, Dept Chem & Chem Biol, Cambridge, MA 02138 USA
[2] Univ Calif Los Angeles, Dept Chem & Biochem, Los Angeles, CA 90095 USA
[3] Brookhaven Natl Lab, Ctr Funct Nanomat, Upton, NY 11973 USA
[4] Univ Calif Los Angeles, Dept Chem & Biomol Engn, Los Angeles, CA 90095 USA
[5] Harvard Univ, Sch Engn & Appl Sci, Cambridge, MA 02138 USA
关键词
DECOMPOSITION; SURFACE; ENERGY; DEHYDROGENATION; CATALYST; FORMATE; OXYGEN; NANOPARTICLES; TEMPERATURE; ACTIVATION;
D O I
10.1021/jacs.2c11323
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Palladium-silver-based alloy catalysts have a great potential for CO-free hydrogen production from formic acid for fuel cell applications. However, the structural factors affecting the selectivity of formic acid decomposition are still debated. Herein, the decomposition pathways of formic acid on Pd-Ag alloys with different atomic configurations have been investigated to identify the alloy structures yielding high H2 selectively. Several PdxAg1-x surface alloys with various compositions were generated on a Pd(111) single crystal; their atomic distribution and electronic structure were determined by a combination of infrared reflection absorption spectroscopy (IRAS), X-ray photoelectron spectroscopy (XPS), and density functional theory (DFT). It was established that the Ag atoms with Pd neighbors are electronically altered, and the degree of alteration correlates with the number of nearest Pd. Temperatureprogrammed reaction spectroscopy (TPRS) and DFT demonstrated that the electronically altered Ag domains create a new reaction pathway that selectively dehydrogenates formic acid. In contrast, Pd monomers surrounded by Ag are demonstrated to have a similar reactivity compared to pristine Pd(111), yielding CO and H2O in addition to the dehydrogenation products. However, they bind to the produced CO weaker than pristine Pd, demonstrating an enhancement in resistance to CO poisoning. This work therefore shows that surface Ag domains modified by interaction with subsurface Pd are the key active sites for selective decomposition of formic acid, while surface Pd atoms are detrimental to selectivity. Hence, the decomposition pathways can be tailored for CO-free H2 production on Pd-Ag alloy systems. (GRAPHICS)
引用
收藏
页码:5114 / 5124
页数:11
相关论文
共 50 条
  • [31] The Promotional Effect of Ag in Pd-Ag/Carbon Nanotube-Graphene Electrocatalysts for Alcohol and Formic Acid Oxidation Reactions
    Rajesh, D.
    Mahendiran, C.
    Suresh, C.
    CHEMELECTROCHEM, 2020, 7 (12) : 2629 - 2636
  • [32] Pd-Ag alloy hollow nanostructures with interatomic charge polarization for enhanced electrocatalytic formic acid oxidation
    Liu, Dong
    Xie, Maolin
    Wang, Chengming
    Liao, Lingwen
    Qiu, Lu
    Ma, Jun
    Huang, Hao
    Long, Ran
    Jiang, Jun
    Xiong, Yujie
    NANO RESEARCH, 2016, 9 (06) : 1590 - 1599
  • [33] Pd-Ag alloy hollow nanostructures with interatomic charge polarization for enhanced electrocatalytic formic acid oxidation
    Dong Liu
    Maolin Xie
    Chengming Wang
    Lingwen Liao
    Lu Qiu
    Jun Ma
    Hao Huang
    Ran Long
    Jun Jiang
    Yujie Xiong
    Nano Research, 2016, 9 : 1590 - 1599
  • [34] Characterization of Pd-Ag membranes after exposure to hydrogen flux at high temperatures
    Bosko, Maria L.
    Yepes, David
    Irusta, Silvia
    Eloy, Pierre
    Ruiz, Patricio
    Lombardo, Eduardo A.
    Cornaglia, Laura M.
    JOURNAL OF MEMBRANE SCIENCE, 2007, 306 (1-2) : 56 - 65
  • [35] Facile Morphology Control of Ag Core/Pd Shell Metal Nanoparticles with Sodium Citrate for Hydrogen Production from Formic Acid
    Baipaywad, Phornsawat
    Udomluck, Nopphadol
    Park, Ye-Eun
    Park, Hye Hun
    Park, Hansoo
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2016, 16 (06) : 5798 - 5803
  • [36] Hydrogen production from formic acid decomposition at room temperature using a Ag-Pd core-shell nanocatalyst
    Tedsree, Karaked
    Li, Tong
    Jones, Simon
    Chan, Chun Wong Aaron
    Yu, Kai Man Kerry
    Bagot, Paul A. J.
    Marquis, Emmanuelle A.
    Smith, George D. W.
    Tsang, Shik Chi Edman
    NATURE NANOTECHNOLOGY, 2011, 6 (05) : 302 - 307
  • [37] Hydrogen production from formic acid decomposition at room temperature using a Ag-Pd core-shell nanocatalyst
    Tedsree K.
    Li T.
    Jones S.
    Chan C.W.A.
    Yu K.M.K.
    Bagot P.A.J.
    Marquis E.A.
    Smith G.D.W.
    Tsang S.C.E.
    Nature Nanotechnology, 2011, 6 (5) : 302 - 307
  • [38] Improved hydrogen production from formic acid on a Pd/C catalyst doped by potassium
    Bulushev, Dmitri A.
    Jia, Lijun
    Beloshapkin, Sergey
    Ross, Julian R. H.
    CHEMICAL COMMUNICATIONS, 2012, 48 (35) : 4184 - 4186
  • [39] Investigation of Pd nanoparticles supported on zeolites for hydrogen production from formic acid dehydrogenation
    Navlani-Garcia, M.
    Martis, M.
    Lozano-Castello, D.
    Cazorla-Amoros, D.
    Mori, K.
    Yamashita, H.
    CATALYSIS SCIENCE & TECHNOLOGY, 2015, 5 (01) : 364 - 371
  • [40] Integrated membrane system for pure hydrogen production: A Pd-Ag membrane reactor and a PEMFC
    Brunetti, A.
    Barbieri, G.
    Drioli, E.
    FUEL PROCESSING TECHNOLOGY, 2011, 92 (01) : 166 - 174