4.7 Article

Bulk and Nanocrystalline Cesium Lead-Halide Perovskites as Seen by Halide Magnetic Resonance

期刊

ACS CENTRAL SCIENCE
卷 6, 期 7, 页码 1138-1149

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acscentsci.0c00587

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资金

  1. European Union through the FP7 (ERC Starting Grant NANOSOLID) [306733]
  2. European Union through Horizon 2020 (ERC Consolidator Grant SCALE-HALO) [819740]
  3. Scholarship Fund of the Swiss Chemical Industry (SSCI Award 2015)
  4. Swiss National Science Foundation [P2EZP2_188002, 200021_169455]
  5. Swiss National Science Foundation through the NCCR Quantum Sciences and Technology
  6. Swiss National Supercomputing Centre (CSCS) [s831, s932]
  7. Department of Energy, Office of Science, Basic Energy Sciences, Materials Sciences and Engineering Division [DE-AC02-76F00515]
  8. Ramon y Cajal Fellowship [RyC-2016-19930]
  9. Spanish Ministerio de Ciencia, Innovacion y Universidades [PGC2018-100818-A-I00]
  10. Swiss National Science Foundation (SNF) [200021_169455, P2EZP2_188002] Funding Source: Swiss National Science Foundation (SNF)
  11. European Research Council (ERC) [819740] Funding Source: European Research Council (ERC)

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Lead-halide perovskites increasingly mesmerize researchers because they exhibit a high degree of structural defects and dynamics yet nonetheless offer an outstanding (opto)electronic performance on par with the best examples of structurally stable and defect-free semiconductors. This highly unusual feature necessitates the adoption of an experimental and theoretical mindset and the reexamination of techniques that may be uniquely suited to understand these materials. Surprisingly, the suite of methods for the structural characterization of these materials does not commonly include nuclear magnetic resonance (NMR) spectroscopy. The present study showcases both the utility and versatility of halide NMR and NQR (nuclear quadrupole resonance) for probing the structure and structural dynamics of CsPbX3 (X = Cl, Br, I), in both bulk and nanocrystalline forms. The strong quadrupole couplings, which originate from the interaction between the large quadrupole moments of; e.g., the Cl-35, Br-79, and I-127 nuclei, and the local electric-field gradients, are highly sensitive to subtle structural variations, both static and dynamic. The quadrupole interaction can resolve structural changes with accuracies commensurate with synchrotron X-ray diffraction and scattering. It is shown that space-averaged site-disorder is greatly enhanced in the nanocrystals compared to the bulk, while the dynamics of nuclear spin relaxation indicates enhanced structural dynamics in the nanocrystals. The findings from NMR and NQR were corroborated by ab initio molecular dynamics, which point to the role of the surface in causing the radial strain distribution and disorder. These findings showcase a great synergy between solid-state NMR or NQR and molecular dynamics simulations in shedding light on the structure of soft lead-halide semiconductors.

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