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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Synthesis of core-shell Au-Pt nanodendrites with high catalytic performance via overgrowth of platinum on in situ gold nanoparticles
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Synthesis of core-shell Au-Pt nanodendrites with high catalytic performance via overgrowth of platinum on in situ gold nanoparticles

机译:通过原位金纳米粒子上铂的过度生长合成具有高催化性能的核-壳Au-Pt纳米枝晶

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We present a simple and effective strategy for high yield synthesis of well-dispersed, core-shell Au-Pt nanodendrites (CS Au-Pt NDs) via overgrowth of platinum on in situ 5.5 nm gold nanoparticles in water at room temperature. The sizes of the resulting CS Au-Pt NDs are 14 nm, which should be the smallest so far to the best of our knowledge. The average dimensions of the small Pt branches on the Au nanoparticle surfaces are about 2.6 nm x 4.2 nm, which lead to a significantly increased electrochemically active surface area (up to 35.2 m(2) g(-1)). It is found that the morphology of CS Au-Pt NDs is dependent on the reaction conditions such as the incubation time of citrate-HAuCl4 solution, the mixing time of citrate-HAuCl4-K2PtCl4 solution before AA addition, and Pt-to-Au and AA-to-Pt molar ratios. In comparison with commercial Pt black (0.12 A mg(Pd)(-1)), the resulting Au-Pt-5 NDs show a superior catalytic activity towards methanol oxidation (0.45 A mg(Pd)(-1)) due to the electronic interaction between the Au cores and Pt branches in bimetallic Au-Pt NDs and the high fraction of atomic steps, kinks, and corner atoms on the surfaces of the Pt branches.
机译:我们提出了一种简单有效的策略,可通过室温下水中5.5 nm金纳米颗粒上原位铂的过度生长来合成高分散性,核壳型Au-Pt纳米树枝晶(CS Au-Pt NDs)。由此产生的CS Au-Pt ND的尺寸为14 nm,据我们所知,这应该是最小的。 Au纳米粒子表面上的小Pt分支的平均尺寸约为2.6 nm x 4.2 nm,这导致电化学活性表面积显着增加(最大35.2 m(2)g(-1))。发现CS Au-Pt NDs的形态取决于反应条件,例如柠檬酸盐-HAuCl4溶液的孵育时间,添加AA之前柠檬酸盐-HAuCl4-K2PtCl4溶液的混合时间以及Pt-to-Au和AA与Pt的摩尔比。与市售Pt黑(0.12 A mg(Pd)(-1))相比,Au-Pt-5 NDs对甲醇氧化具有优异的催化活性(0.45 A mg(Pd)(-1)),这是因为双金属Au-Pt ND中Au核与Pt分支之间的电子相互作用以及Pt分支表面上高比例的原子台阶,扭结和角原子。

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