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Article Abstract

In this study, we demonstrate Sn-assisted vapor-liquid-solid (VLS) growth of lead iodide (PbI) nanowires with van der Waals layered crystal structure and subsequent vapor-phase conversion into methylammonium lead iodide (CHNHPbI) perovskites. Our systematic microscopic investigations confirmed that the VLS-grown PbI nanowires display two major growth orientations of [0001] and [1¯21¯0], corresponding to the stacking configurations of PbI layers to the nanowire axis (transverse for [0001] vs. parallel for [1¯21¯0]). The resulting difference in the sidewall morphologies was correlated with the perovskite conversion, where [0001] nanowires showed strong localized conversion at top and bottom, as opposed to [1¯21¯0] nanowires with an evenly distributed degree of conversion. An ab initio energy calculation suggests that CHNHI preferentially diffuses and intercalates into (112¯0) sidewall facets parallel to the [1¯21¯0] nanowire axis. Our results underscore the ability to control the crystal structures of van der Waals type PbI in nanowire via the VLS technique, which is critical for the subsequent conversion process into perovskite nanostructures and corresponding properties.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7830942PMC
http://dx.doi.org/10.3390/nano11010223DOI Listing

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