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Nanoscale chemical heterogeneity dominates the optoelectronic response of alloyed perovskite solar cells. | LitMetric

AI Article Synopsis

  • Halide perovskites excel in optoelectronic devices despite having deep charge-carrier traps and structural heterogeneity, which usually harm performance.
  • Researchers developed advanced microscopy techniques to visualize the nanoscale chemical and structural characteristics of these devices, revealing that compositional disorder plays a more significant role in optoelectronic performance than nanoscale strain.
  • These findings indicate that nanoscale compositional gradients improve carrier movement to regions with low disorder, enhancing light emission efficiency and demonstrating how spatial chemical disorder can improve defect tolerance in the devices.

Article Abstract

Halide perovskites perform remarkably in optoelectronic devices. However, this exceptional performance is striking given that perovskites exhibit deep charge-carrier traps and spatial compositional and structural heterogeneity, all of which should be detrimental to performance. Here, we resolve this long-standing paradox by providing a global visualization of the nanoscale chemical, structural and optoelectronic landscape in halide perovskite devices, made possible through the development of a new suite of correlative, multimodal microscopy measurements combining quantitative optical spectroscopic techniques and synchrotron nanoprobe measurements. We show that compositional disorder dominates the optoelectronic response over a weaker influence of nanoscale strain variations even of large magnitude. Nanoscale compositional gradients drive carrier funnelling onto local regions associated with low electronic disorder, drawing carrier recombination away from trap clusters associated with electronic disorder and leading to high local photoluminescence quantum efficiency. These measurements reveal a global picture of the competitive nanoscale landscape, which endows enhanced defect tolerance in devices through spatial chemical disorder that outcompetes both electronic and structural disorder.

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Source
http://dx.doi.org/10.1038/s41565-021-01019-7DOI Listing

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