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分散良好的碲掺杂介孔碳作为高性能染料敏化太阳能电池的无铂对电极。

Well-dispersed Te-doped mesoporous carbons as Pt-free counter electrodes for high-performance dye-sensitized solar cells.

作者信息

Ji Jung-Min, Kim Chang Ki, Kim Hwan Kyu

机构信息

Global GET-Future Laboratory & Department of Advanced Materials Chemistry, Korea University, 2511 Sejong-ro, Sejong 30019, Korea.

出版信息

Dalton Trans. 2021 Jul 13;50(27):9399-9409. doi: 10.1039/d0dt04372a.

Abstract

A tellurium-doped carbon nanomaterial (Te-MC(P)) was newly developed by the soft-templated carbonization of the PAN-b-PBA copolymer with poly(3-hexyltellurophene). Te-MC(P) was characterized with various characterization methods, including the nitrogen sorption isotherm measurement (BET), X-ray photoelectron spectroscopy (XPS) and energy-dispersive X-ray spectroscopy (EDS), which reveal that the Te atoms are homogeneously dispersed in the three-dimensional hierarchical, graphite-like mesoporous carbon matrix with a Te doping level of 0.27 atom %. Based on the characterization results, the electrocatalytic ability of Te-MC(P) was evaluated by using a symmetrical dummy cell test with both Co(bpy)32+/3+ (bpy = 2,2'-bipyridine) and I-/I3- redox electrolytes as counter electrodes (CEs). The Te-MC(P) CEs showed remarkably lower charge-transfer resistance (Rct) values by approximately 10 times in the electrochemical impedance spectroscopy (EIS) measurement, compared to the counterpart platinum (Pt) and the tellurium-based material (Te-MC(A)), prepared with a telluric acid precursor that has a lower Te doping level of 0.15 at%. As a result, the excellent electrocatalytic ability of Te-MC(P) resulted in the improvement of photovoltaic performance. The power conversion efficiencies (PCEs) of Te-MC(P)-based dye-sensitized solar cells (DSSCs) were 12.69% for the Co(bpy)32+/3+ redox electrolyte with the SGT-021 porphyrin dye and 9.73% for the I-/I3- redox electrolyte with the N719 ruthenium dye. Furthermore, Te- MC(P) CEs exhibited remarkable electrochemical stability in the two redox electrolytes. These results could suggest that the Te-MC(P) CE is one of the best promising alternatives to Pt CEs as a low-cost, highly stable and efficient electrocatalytic CE for practical applications.

摘要

通过聚(丙烯腈 - b - 聚丙烯酸丁酯)共聚物与聚(3 - 己基碲吩)的软模板碳化,新开发了一种碲掺杂碳纳米材料(Te - MC(P))。采用多种表征方法对Te - MC(P)进行了表征,包括氮吸附等温线测量(BET)、X射线光电子能谱(XPS)和能量色散X射线光谱(EDS),结果表明碲原子以0.27原子%的掺杂水平均匀分散在三维分级的类石墨介孔碳基质中。基于表征结果,通过使用以Co(bpy)32+/3+(bpy = 2,2'-联吡啶)和I-/I3-氧化还原电解质作为对电极(CE)的对称虚拟电池测试,评估了Te - MC(P)的电催化能力。在电化学阻抗谱(EIS)测量中,与对应的铂(Pt)和用碲酸前驱体制备的碲基材料(Te - MC(A))相比,Te - MC(P)对电极的电荷转移电阻(Rct)值显著降低了约10倍,Te - MC(A)的碲掺杂水平较低,为0.15原子%。结果,Te - MC(P)优异的电催化能力导致了光伏性能的提高。基于Te - MC(P)的染料敏化太阳能电池(DSSC),对于使用SGT - 021卟啉染料的Co(bpy)32+/3+氧化还原电解质,功率转换效率(PCE)为12.69%,对于使用N719钌染料的I-/I3-氧化还原电解质,功率转换效率为9.73%。此外,Te - MC(P)对电极在两种氧化还原电解质中表现出显著的电化学稳定性。这些结果表明,Te - MC(P)对电极作为一种低成本、高稳定性且高效的电催化对电极,在实际应用中是铂对电极最有前景的替代物之一。

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