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首页> 外文期刊>Japanese journal of applied physics >Overcoming the efficiency limitations of SnS_2 nanoparticle-based bulk heterojunction solar cells
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Overcoming the efficiency limitations of SnS_2 nanoparticle-based bulk heterojunction solar cells

机译:克服SNS_2基于纳米粒子的散骨异质结太阳能电池的效率限制

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This study examined the effects of heat treatment, the electron transport layer, and [6,6]-phenyl C61 butyric acid methyl ester (PCBM) incorporation on the performance of hybrid bulk heterojunction (BHJ) solar cells composed of tin disulfide (SnS2) nanoparticles (NPs) and low band gap energy polymers poly[2,6-(4,4-bis(2-ethylhexyl)-4H-cyclopenta[2,1-b; 3,4-b'] dithiophene)-alt-4,7(2,1,3-benzothiadiazole)] (PCPDTBT) or poly({4,8-bis[(2-ethylhexyl) oxy] benzo[1,2-b: 4,5-b'] dithiophene-2,6-diyl}{3-fluoro-2-[(2-ethylhexyl) carbonyl] thieno[3,4-b] thiophenediyl}) (PBT7). Inserting an electron transport layer (ETL) (i.e., ZnO) on the top of the photoactive layer improved the surface morphology of the photoactive layer, which led to an improvement in charge transport. Moreover, adding a suitable amount of PCBM to the SnS2/polymer active layer enhanced the device performance, such as short circuit current density (J(sc)) and power conversion efficiency (PCE). In particular, adding 0.5 mg of PCBM to the composite solution led to a 25% and 1.5% improvement in the J(sc) value and PCE, respectively. The enhanced performance was due mainly to the improvements in the surface morphology of the photoactive layer, charge carrier mobility within the donor-acceptor interface, and carrier collection efficiency at the cathode. (C) 2018 The Japan Society of Applied Physics
机译:该研究检测了热处理,电子传输层和[6,6] -phenyl C61丁酸甲酯(PCBM)掺入杂交散装杂交(BHJ)太阳能电池的性能(SNS2)的性能纳米颗粒(NPS)和低频带隙能聚合物聚合物[2,6-(4,4-双(2-乙基己基)-4H-环戊基[2,1-B; 3,4-B']二苯甲酸乙烯 - 4,7(2,1,3-苯并噻唑)](PCPDTBT)或聚({4,8-双[(2-乙基己基)氧]苯并[1,2-B:4,5-B']二噻吩 - 2,6-二基} {3-氟-2- [(2-乙基己基)羰基]噻吩[3,4-b]噻吩噻and})(PBT7)。在光活性层的顶部插入电子传输层(即,ZnO)改善了光活性层的表面形态,这导致了电荷输送的改善。此外,向SNS2 /聚合物有源层添加合适量的PCBM增强了装置性能,例如短路电流密度(J(SC))和电力转换效率(PCE)。特别是,将0.5mg PCBM加入到复合溶液中,分别在J(SC)值和PCE中提高了25%和1.5%。增强的性能主要是由于光活性层表面形貌的改善,在施主界面内的电荷载流子迁移率,以及阴极的载流子收集效率。 (c)2018年日本应用物理学会

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