不同形貌铂纳米粒子的制备及其应用于选择性催化加氢的研究进展

荆倩, 李鑫怡, 王瑞, 赵阳, 王欢*

化工新型材料 ›› 2022, Vol. 50 ›› Issue (12) : 279 -282.

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化工新型材料 ›› 2022, Vol. 50 ›› Issue (12) : 279-282. DOI: 10.19817/j.cnki.issn1006-3536.2022.12.052
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不同形貌铂纳米粒子的制备及其应用于选择性催化加氢的研究进展

    荆倩, 李鑫怡, 王瑞, 赵阳, 王欢*
作者信息 +

Progress in the preparation of platinum nanoparticles with different morphologies and their applications in selective catalytic hydrogenation

  • Jing Qian, Li Xinyi, Wang Rui, Zhao Yang, Wang Huan
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文章历史 +
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摘要

金属纳米粒子的尺寸及形貌对其催化性能有很大影响,因此,实现金属纳米粒子形貌的可控制备具有重要的学术研究意义和工业应用价值。铂纳米粒子由于具有优异的催化加氢活性,其不同形貌对于加氢产物选择性的调控已成为研究人员关注的重点。总结了近年不同形貌铂纳米粒子的制备方法,及其在选择性催化加氢应用方面的研究进展。

Abstract

The size and morphology of metal nanoparticles have great influences on their catalytic performances.Therefore,the realization of the controllable preparation of the morphology of metal nanoparticles is important in academic research and industrial application.Due to the excellent catalytic hydrogenation activity of platinum nanoparticles,the selective regulation of hydrogenation products with their different morphologies has become the focus of attention of researchers.This paper summarized the preparation methods of platinum nanoparticles with different morphologies and their research progress in selective catalytic hydrogenation applications in recent years.

关键词

铂立方体 / 铂八面体 / 铂立方八面体 / 选择性催化加氢

Key words

platinum cube / platinum octahedron / platinum cuboctahedron / selective catalytic hydrogenation

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不同形貌铂纳米粒子的制备及其应用于选择性催化加氢的研究进展[J]. 化工新型材料, 2022, 50(12): 279-282 DOI:10.19817/j.cnki.issn1006-3536.2022.12.052

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参考文献

[1] Xia Y,Xiong Y,Lim B,et al.Shape-controlled synthesis of metal nanocrystals:simple chemistry meets complex physics?[J].AngewandteChemie International Edition,2013,38(1):335-344.
[2] Kang Y,Pyo J B,Ye X,et al.Shape-controlled synthesis of Pt nanocrystals:the role of metal carbonyls[J].ACS Nano,2012,7(1):645-653.
[3] Qian J,Shen M,Zhou S,et al.Synthesis of Pt nanocrystals with different shapes using the same protocol to optimize their catalytic activity toward oxygen reduction[J].Materials Today,2018,21(8):801-928.
[4] Song H,Kim F,Connor S,et al.Pt nanocrystals:shape control and langmuirblodgett monolayer formation[J].The Journal of Physical Chemistry B,2005,109(1):188-193.
[5] Ahmadi T S,Wang Z L,Green T C,et al.Shape-controlled synthesis of colloidal platinum nanoparticles[J].Science,1996,272(5270):1924-1926.
[6] Wang C,Daimon H,Lee Y,et al.Synthesis of monodisperse Pt nanocubes and their enhanced catalysis for oxygen reduction[J].Journal of the American Chemical Society,2007,129(22):6974-6975.
[7] Chiu C Y,Li Y,Ruan L,et al.Platinum nanocrystals selectively shaped using facet-specific peptide sequences[J].Nature Chemistry,2011,3(5):393-399.
[8] Petroski J M,Wang Z L,Green T C,et al.Kinetically controlled growth and shape formation mechanism of platinum nanoparticles[J].ChemInform,1998,29(18):3316-3320.
[9] Ren J,Tilley R D.Preparation,self-assembly,and mechanistic study of highly monodispersed nanocubes[J].Journal of the American Chemical Society,2007,129(11):3287-3291.
[10] Wu B,Zheng N,Fu G.Small molecules control the formation of Pt nanocrystals:a key role of carbon monoxide in the synthesis of Pt nanocubes[J].Chemical Communications,2010,47(3):1-3.
[11] Wang C,Daimon H,Onodera T,et al.A general approach to the size- and shape-controlled synthesis of platinum nanoparticles and their catalytic reduction of oxygen[J].Angewandte Chemie International Edition,2008,120(19):3644-3647.
[12] Kang Y,Ye X,Murray C.Size—and shape—selective synthesis of metal nanocrystals and nanowires using CO as a reducing agent[J].Angewandte Chemie,2010,49(35):6156-6159.
[13] Grass M E,Yue Y,Habas S E,et al.Silver ion mediated shape control of platinum nanoparticles:removal of silver by selective etching leads to increased catalytic activity[J].Journal of Physical Chemistry C,2008,112(13):4797-4804.
[14] Lee C T,Xuan Y,Vara M,et al.Water—based synthesis of sub—10 nm Pt octahedra and their performance towards the oxygen reduction reaction[J].Chem Nano Mat,2017,3(12):879-884.
[15] Zhu W,Yin A X,Zhang W,et al.Highly shape-selective synthesis of monodispersed fivefold twinned platinum nanodecahedrons and nanoicosahedrons[J].Chemistry-A European Journal,2012,18(39):12222-12226.
[16] Zhou W,Wu J,Yang H.Highly uniform platinum icosahedra made by hot injection-assisted GRAILS method[J].Nano Letters,2013,13(6):2870-2874.
[17] Huang L,Liu M,Lin H,et al.Shape regulation of high-index facet nanoparticles by dealloying[J].Science,2019,365(6458):1159-1163.
[18] Bu L,Feng Y,Yao J,et al.Facet and dimensionality control of Pt nanostructures for efficient oxygen reduction and methanol oxidation electrocatalysts[J].Nano Research,2016,9(9):2811-2821.
[19] Xu D,Lv H,Jin H,et al.Crystalline facet-directed generation engineering of ultrathin platinum nanodendrites[J].Journal of Physical Chemistry Letters,2019,10(3):663-671.
[20] Lim B,Lu X,Jiang M,et al.Facile synthesis of highly faceted multioctahedral Pt nanocrystals through controlled overgrowth[J].Nano Letters,2008,8(11):4043-4047.
[21] Lei Z,Chen D,Jiang Z,et al.Facile syntheses and enhanced electrocatalytic activities of Pt nanocrystals with {hkk high-index surfaces[J].Nano Research,2012,5(3):181-189.
[22] Yu T,Kim D Y,Hui Z,et al.Platinum concave nanocubes with high index facets and their enhanced activity for oxygen reduction reaction[J].Angewandte Chemie,2011,50(12):2773-2777.
[23] Huang X,Zhao Z,Fan J,et al.Amine—assisted synthesis of concave polyhedral platinum nanocrystals having {411 high-index facets[J].Journal of the American Chemical Society,2011,133(13):4718-4721.
[24] Chen J,Lim B,Lee E P,et al.Shape-controlled synthesis of platinum nanocrystals for catalytic and electrocatalytic applications[J].Nano Today,2009,4(1):81-95.
[25] 杜桂芬.热力学亚稳态Pt基纳米晶的调控合成及催化性质研究[D].厦门:厦门大学,2018.
[26] 李艳艳,饶路,姜艳霞,等.多壁碳纳米管负载铂立方体的制备及对乙醇电催化氧化性能[J].高等学校化学学报,2013(2):174-179.
[27] 周健.负载型铂催化剂的制备及其甘油氧化性能的研究[D].呼和浩特:内蒙古大学,2019.
[28] Moglianetti M,Solla-Gullon J,Donati P,et al.Citrate-coated,size-tunable octahedral platinum nanocrystals:a novel route for advanced electrocatalysts[J].ACS Applied Materials & Interfaces,2018,10(48):41608-41617.
[29] 李甘.八面体铂纳米晶的可控合成[J].湖北工程学院学报,2015,159(6):89-93.
[30] Zhao M,Holder J,Chen Z,et al.Facile synthesis of Pt icosahedral nanocrystals with controllable sizes for the evaluation of size-dependent activity toward oxygen reduction[J].ChemCatChem,2019,11(10):2458-2463.
[31] Kang Y,Yang P,Markovic N M,et al.Shaping electrocatalysis through tailored nanomaterials[J].Nano Today,2016,11(5):587-600.
[32] Lim S I,Ojea-JimeNez I,Varon M,et al.Synthesis of platinum cubes,polypods,cuboctahedrons,and raspberries assisted by cobalt nanocrystals[J].Nano Letters,2010,10(3):964-973.
[33] 张明明,苏嫚嫚,赵燕熹,等.Pt-Ir合金多孔立方体纳米颗粒的控制合成及其电催化性能[J].化学与生物工程,2020,37(4):5.
[34] 林卓清.铂基双金属纳米晶的可控制备及其甲醇氧化性能研究[D].杭州:浙江大学,2016.
[35] Li Y,Liu Z,Crossley S P,et al.Effect of hydrogen coverage on hydrogenation of o-cresol on Pt(111)[J].Applied Surface Science,2018,443:575-580.
[36] Kato S,Ohyama J,Machida M,et al.Gas-phase synthesis of morphology-controlled Pt nanoparticles and their impact on cinnamaldehyde hydrogenation[J].Catalysis Science & Technology,2019(9):2097-2102.
[37] Bratlie K M,Lee H,Komvopoulos K,et al.Platinum nanoparticle shape effects on benzene hydrogenation selectivity[J].Nano Letters,2007,7(10):3097-3101.
[38] 王军华.硝基苯加氢反应中负载型镍,铂催化剂的研究[D].杭州:浙江大学,2011.
[39] Tolek W,Khruechao K,Pongthawornsakun B,et al.Flame spray-synthesized Pt-Co/TiO2 catalysts for the selective hydrogenation of furfural to furfuryl alcohol[J].Catalysis Communications,2020,149:106246-106251.
[40] Taylor M J,Beaumont S K,Islam M J,et al.Atom efficient PtCu bimetallic catalysts and ultra dilute alloys for the selective hydrogenation of furfural[J].Applied Catalysis B Environmental,2020,284:119737.

基金资助

2020年东北石油大学优秀科研人才培育基金项目“省杰青后备人才”(SJQHB202001)

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