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首页> 外文期刊>Journal of the American Chemical Society >Hierarchical Tuning of the Performance of Electrochemical Carbon Dioxide Reduction Using Conductive Two-Dimensional Metallophthalocyanine Based Metal-Organic Frameworks
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Hierarchical Tuning of the Performance of Electrochemical Carbon Dioxide Reduction Using Conductive Two-Dimensional Metallophthalocyanine Based Metal-Organic Frameworks

机译:使用导电二维金属酞菁基金属有机框架进行电化学二氧化碳减排性能的层次调整

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摘要

The use of reticular materials in the electrochemical reduction of carbon dioxide to value-added products has the potential to enable tunable control of the catalytic performance through the modulation of chemical and structural features of framework materials with atomic precision. However, the tunable functional performance of such systems is still largely hampered by their poor electrical conductivities. This work demonstrates the use of four systematic structural analogs of conductive two-dimensional (2D) metal-organic frameworks (MOFs) made of metallophthalocyanine (MPc) ligands linked by Cu nodes with electrical conductivities of 2.73 × 10~(-3) to 1.04 × 10~(-1) S cm~(-1) for the electrochemical reduction of CO_2 to CO. The catalytic performance of the MOFs, including the activity and selectivity, is found to be hierarchically governed by two important structural factors: the metal within the MPc (M = Co vs Ni) catalytic subunit and the identity of the heteroatomic cross-linkers between these subunits (X = O vs NH). The activity and selectivity are dominated by the choice of metal within MPcs and are further modulated by the heteroatomic linkages. Among these MOFs, CoPc-Cu-O exhibited the highest selectivity toward CO product (Faradaic efficiency FE_(CO) = 85%) with high current densities up to -17.3 mA cm~(-2) as a composite with carbon black at 1:1 mass ratio) at a low overpotential of -0.63 V. Without using any conductive additives, the use of CoPc-Cu-O directly as an electrode material was able to achieve a current density of -9.5 mA cm~(-2) with a FE_(CO) of 79%. Mechanistic studies by comparison tests with metal-free phthalocyanine MOF analogs supported the dominant catalytic role of the central metal of the phthalocyanine over Cu nodes. Density-functional theory calculations further suggested that, compared with the NiPc-based and NH-linked analogs, CoPc-based and O-linked MOFs have lower activation energies in the formation of carboxyl intermediate, in line with their higher activities and selectivity. The results of this study indicate that the use of 2D MPc-based conductive framework materials holds great promise for achieving efficient CO_2 reduction through strategic ligand engineering with multiple levels of tunability.
机译:在二氧化碳的电化学还原中使用网状物料的使用具有增值产品的电化学性能通过用原子精度调节框架材料的化学和结构特征来实现催化性能的可调控制。然而,这种系统的可调功能性能仍然受到差的电导率的差异。该工作证明了使用由Cu节点连接的金属酞菁(MPC)配体制成的四种系统结构类似物(MOF),电导率为2.73×10〜(3)至1.04 ×10〜(-1)S cm〜(-1)用于电化学减少CO_2至CO。发现MOF的催化性能,包括活动和选择性,由两个重要的结构因素进行分层管辖:金属在MPC(m = Co Vs Ni)催化亚基和这些亚基之间的杂原子交联剂的同一性(x = O与NH)。活性和选择性是通过MPCs内的金属选择的主导,并且通过杂原子键进一步调节。在这些MOF中,COPC-CU-O对CO产品(FARADAIC效率Fe_(CO)= 85%)的选择性最高,高电流密度高达-17.3 mA cm〜(-2),为1的复合材料1 :1质量比)在-0.63 V的低过电脑上。不使用任何导电添加剂,直接用作电极材料的COPC-Cu-O能够达到-9.5 mA cm〜(-2)的电流密度FE_(CO)为79%。通过无金属酞菁MOF类似物的比较试验的机械研究支持在Cu节点上的酞菁的中央金属的显性催化作用。密度功能理论计算进一步表明,与NIPc基和NH连接的类似物相比,COPC基和O型连接的MOF在形成羧基中间体的形成中具有较低的活化能量,其含有更高的活性和选择性。该研究的结果表明,使用2D MPC的导电框架材料,通过具有多种可调性的战略配体工程实现有效的CO_2减少,这具有很大的希望。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2020年第52期|21656-21669|共14页
  • 作者单位

    Department of Chemistry Dartmouth College Hanover New Hampshire 03755 United States;

    Thayer School of Engineering Dartmouth College Hanover New Hampshire 03755 United States;

    Thayer School of Engineering Dartmouth College Hanover New Hampshire 03755 United States;

    Department of Chemistry Dartmouth College Hanover New Hampshire 03755 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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