Facet-Engineered Rubidium Lead Halide Nanocrystals for Pyro-Phototronic Broadband Photodetection.
basic_science · Level V
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- Record sourced from PubMed, PMID 41261918.
- Also identified by DOI 10.1002/adma.202510226.
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Abstract
Cesium lead halide has been extensively studied as efficient materials for optoelectronic device applications. Beyond Cs(I), the exploration of other inorganic A-site monovalent cations remains limited, though Rb(I) stands out as a potential alternative whose role in colloidal nanocrystals is largely unexplored. Here, Rb (I) is employed as an effective A-site cation in forming monoclinic-phase RbPb<sub>2</sub>Cl<sub>5</sub>, where Pb (II) heptahedrally coordinated. A template-mediated cation exchange strategy is employed where 0D Rb<sub>4</sub>CdCl<sub>6</sub> used as host nanocrystals. Upon introduction of Pb (II), fast Cd to Pb ion exchange triggers and 2D RbPb<sub>2</sub>Cl<sub>5</sub> in rhombic prism, hexagonal prism or hexagonal platelet-shaped nanocrystals are formed depending on the reaction conditions. Further to explore the optoelectronic properties, photo response measurements are carried out which exhibit significant pyro-photocurrent response from these nanocrystals even under ultra-low-intensity light illumination (7 nW cm<sup>-2</sup>) across ultraviolet (UV) to near-infrared (NIR) spectral range. Despite its centrosymmetric structure, RbPb<sub>2</sub>Cl<sub>5</sub> generates pyro-photocurrent due to surface halide deficiencies, supported by DFT which shows surface polarization of |𝝙P| = 0.173 C m<sup>-2</sup>. These findings highlight the pivotal role of Rb (I) in stabilizing these nanostructures and open a new avenue for their application in advanced optoelectronic devices.