Understanding efficiency losses from radiative and nonradiative recombination in Cu<sub>2</sub>ZnSn(S,Se)<sub>4</sub> solar cells.

Hadke, Shreyash S; Su, Zhenghua; Meng, Qingbo; Xin, Hao; Wu, Sixin; Liang, Guangxing; Shao, Zhipeng; Wong, Lydia H · Nat Commun · 2025

basic_science · Level V

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Abstract

The photovoltaic performance of Cu<sub>2</sub>ZnSn(S,Se)<sub>4</sub> is limited by open-circuit voltage losses (ΔV<sub>OC</sub>) in the radiative (ΔV<sub>OC</sub><sup>Rad</sup>) and non-radiative (ΔV<sub>OC</sub><sup>Nrad</sup>) limits, due to sub-bandgap absorption and deep defects, respectively. Recently, several devices with power conversion efficiencies approaching 15% have been reported, prompting renewed interest in the possibility that the key performance-limiting factors have been addressed. In this work, we analyze the sources of ΔV<sub>OC</sub> in these devices and offer directions for future research. We find that ΔV<sub>OC</sub><sup>Rad</sup>, arising from bandgap fluctuations and Urbach tails, has been significantly suppressed, with values comparable to those of commercial Cu(In,Ga)(S,Se)<sub>2</sub> solar cells. However, the recombination parameter J<sub>0</sub>, which is more directly related to ΔV<sub>OC</sub><sup>Nrad</sup>, shows only modest improvement and must be reduced by four to six orders of magnitude to compete with Cu(In,Ga)(S,Se)<sub>2</sub>. To approach the theoretical efficiency limit, future work should focus on more directly addressing deep defects and ΔV<sub>OC</sub><sup>Nrad</sup>.