4.8 Article

Methanol tolerance of atomically dispersed single metal site catalysts: mechanistic understanding and high-performance direct methanol fuel cells

Journal

ENERGY & ENVIRONMENTAL SCIENCE
Volume 13, Issue 10, Pages 3544-3555

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0ee01968b

Keywords

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Funding

  1. U.S. Department of Energy, Office of Energy Efficiency and Renewable Energy (EERE), Fuel Cell Technology Office [DE-EE0008075, DE-EE0008076, DE-EE0008417]
  2. National Science Foundation [1900039, CBET-1604392, 1804326]
  3. DOE Office of Science [DE-AC02-06CH11357]
  4. Welch Foundation [F-1959-20180324]
  5. Division Of Chemistry
  6. Direct For Mathematical & Physical Scien [1900039] Funding Source: National Science Foundation

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Proton-exchange membrane fuel cells (PEMFCs) and direct methanol fuel cells (DMFCs) are promising power sources from portable electronic devices to vehicles. The high-cost issue of these low-temperature fuel cells can be primarily addressed by using platinum-group metal (PGM)-free oxygen reduction reaction (ORR) catalysts, in particular atomically dispersed metal-nitrogen-carbon (M-N-C, M = Fe, Co, Mn). Furthermore, a significant advantage of M-N-C catalysts is their superior methanol tolerance over Pt, which can mitigate the methanol cross-over effect and offer great potential of using a higher concentration of methanol in DMFCs. Here, we investigated the ORR catalytic properties of M-N-C catalysts in methanol-containing acidic electrolytesviaexperiments and density functional theory (DFT) calculations. FeN(4)sites demonstrated the highest methanol tolerance ability when compared to metal-free pyridinic N, CoN4, and MnN(4)active sites. The methanol adsorption on MN(4)sites is even strengthened when electrode potentials are applied during the ORR. The negative influence of methanol adsorption becomes significant for methanol concentrations higher than 2.0 M. However, the methanol adsorption does not affect the 4e(-)ORR pathway or chemically destroy the FeN(4)sites. The understanding of the methanol-induced ORR activity loss guides the design of promising M-N-C cathode catalyst in DMFCs. Accordingly, we developed a dual-metal site Fe/Co-N-C catalyst through a combined chemical-doping and adsorption strategy. Instead of generating a possible synergistic effect, the introduced Co atoms in the first doping step act as scissors for Zn removal in metal-organic frameworks (MOFs), which is crucial for modifying the porosity of the catalyst and providing more defects for stabilizing the active FeN(4)sites generated in the second adsorption step. The Fe/Co-N-C catalyst significantly improved the ORR catalytic activity and delivered remarkably enhanced peak power densities (i.e., 502 and 135 mW cm(-2)) under H-2-air and methanol-air conditions, respectively, representing the best performance for both types of fuel cells. Notably, the fundamental understanding of methanol tolerance, along with the encouraging DMFC performance, will open an avenue for the potential application of atomically dispersed M-N-C catalysts in other direct alcohol or ammonia fuel cells.

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