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首页> 外文期刊>The Journal of Chemical Physics >Theoretical limits of multiple exciton generation and singlet fission tandem devices for solar water splitting
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Theoretical limits of multiple exciton generation and singlet fission tandem devices for solar water splitting

机译:用于太阳能水分裂多个激子生成和单线裂变串联装置的理论限制

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Photoelectrochemical (PEC) water splitting is one of the most important approaches being investigated for solar fuel generation. In this study, we determine the maximum thermodynamic power conversion efficiencies (PCEs) of PEC water splitting two-bandgap tandem devices that produce multiple carriers per photon absorbed via Multiple Exciton Generation (MEG) or Singlet Fission (SF) and in the presence of solar concentration. Here, we employ a detailed balance thermodynamic analysis to determine the effects of top cell thickness, solar concentration, carrier multiplication, electrode overvoltage (V-O), and water absorption on PEC power conversion efficiency for water splitting cells. We have found a maximum PEC power conversion efficiency of 62.9% in cells using two ideal tandem MEG absorbers with bandgaps of 0.3 and 1.2 eV at 1000-suns solar concentration and 0 overvoltage; the maximum PCE for two tandem SF absorbers under the same conditions is nearly the same at 59% with the same values for the absorption thresholds. A very interesting and important result was that, upon thinning the top cell, the range of viable bandgaps for both the top and bottom cells is extended by as much as 0.5-1 eV while still maintaining high maximum conversion efficiency (60-63%). The effects of imposing different solar concentrations from 1X to 1000X and having different tandem configurations of SF and MEG layers were also studied.
机译:光电化学(PEC)水分裂是用于太阳能燃料产生的最重要的方法之一。在这项研究中,我们确定PEC水分的最大热力学功率转换效率(PCE)两带隙串联装置,其通过多个激子生成(MEG)或单线裂解(SF)和在太阳能存在的情况下产生多个载体专注。在这里,我们采用了详细的平衡热力学分析,以确定顶部电池厚度,太阳能浓度,载体乘法,电极过电压(V-O),和吸水性上的水分解细胞PEC功率转换效率的影响。我们已经发现在62.9%的最大PEC功率转换效率在使用具有0.3带隙和1.2 eV的两个理想的串联MEG吸收剂细胞1000个太阳太阳能浓度和0过电压;在相同条件下的两个串联SF吸收剂的最大PCE在59%下几乎相同,吸收阈值相同。一个非常有趣和重要的结果是,在稀疏顶部电池时,顶部和底部电池的可行带隙的范围延伸多达0.5-1eV,同时保持高最大转换效率(60-63%) 。还研究了将不同的太阳能浓度从1倍施加到1000倍并具有不同串联结构的SF和MEG层的效果。

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