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Merck
CN
  • Platinum and palladium nano-structured catalysts for polymer electrolyte fuel cells and direct methanol fuel cells.

Platinum and palladium nano-structured catalysts for polymer electrolyte fuel cells and direct methanol fuel cells.

Journal of nanoscience and nanotechnology (2013-08-02)
Nguyen Viet Long, Cao Minh Thi, Yang Yong, Masayuki Nogami, Michitaka Ohtaki
摘要

In this review, we present the synthesis and characterization of Pt, Pd, Pt based bimetallic and multi-metallic nanoparticles with mixture, alloy and core-shell structure for nano-catalysis, energy conversion, and fuel cells. Here, Pt and Pd nanoparticles with modified nanostructures can be controllably synthesized via chemistry and physics for their uses as electro-catalysts. The cheap base metal catalysts can be studied in the relationship of crystal structure, size, morphology, shape, and composition for new catalysts with low cost. Thus, Pt based alloy and core-shell catalysts can be prepared with the thin Pt and Pt-Pd shell, which are proposed in low and high temperature proton exchange membrane fuel cells (PEMFCs), and direct methanol fuel cells (DMFCs). We also present the survey of the preparation of Pt and Pd based catalysts for the better catalytic activity, high durability, and stability. The structural transformations, quantum-size effects, and characterization of Pt and Pd based catalysts in the size ranges of 30 nm (1-30 nm) are presented in electro-catalysis. In the size range of 10 nm (1-10 nm), the pure Pt catalyst shows very large surface area for electro-catalysis. To achieve homogeneous size distribution, the shaped synthesis of the polyhedral Pt nanoparticles is presented. The new concept of shaping specific shapes and morphologies in the entire nano-scale from nano to micro, such as polyhedral, cube, octahedra, tetrahedra, bar, rod, and others of the nanoparticles is proposed, especially for noble and cheap metals. The uniform Pt based nanosystems of surface structure, internal structure, shape, and morphology in the nanosized ranges are very crucial to next fuel cells. Finally, the modifications of Pt and Pd based catalysts of alloy, core-shell, and mixture structures lead to find high catalytic activity, durability, and stability for nano-catalysis, energy conversion, fuel cells, especially the next large-scale commercialization of next PEMFCs, and DMFCs.

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甲醇, suitable for HPLC, ≥99.9%
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甲醇, ACS reagent, ≥99.8%
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甲醇, suitable for HPLC, gradient grade, ≥99.9%
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甲醇, HPLC Plus, ≥99.9%
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甲醇, anhydrous, 99.8%
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甲醇, Laboratory Reagent, ≥99.6%
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甲醇, suitable for HPLC, gradient grade, suitable as ACS-grade LC reagent, ≥99.9%
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甲醇, puriss. p.a., ACS reagent, reag. ISO, reag. Ph. Eur., ≥99.8% (GC)
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甲醇, ACS spectrophotometric grade, ≥99.9%
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甲醇, ACS reagent, ≥99.8%
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甲醇, BioReagent, ≥99.93%
Supelco
甲醇, analytical standard
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甲醇, ACS reagent, ≥99.8%
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钯, powder, 99.995% trace metals basis
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铂, wire, diam. 1.0 mm, 99.9% trace metals basis
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钯, powder, <1 μm, ≥99.9% trace metals basis
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铂, powder, 99.995% trace metals basis
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铂, wire, diam. 0.25 mm, 99.9% trace metals basis
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钯, nanopowder, <25 nm particle size (TEM), ≥99.5%
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铂, gauze, 100 mesh, 99.9% trace metals basis
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甲醇, puriss., meets analytical specification of Ph Eur, ≥99.7% (GC)
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铂黑, ≥99.9% trace metals basis
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钯, powder or granules, 99.99% trace metals basis
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