In situ coherent x-ray scattering reveals polycrystalline structure and discrete annealing events in strongly coupled nanocrystal superlattices

Author:

Hurley Matthew J.1ORCID,Tanner Christian P. N.2,Portner Joshua3,Utterback James K.2ORCID,Coropceanu Igor3,Das Avishek2ORCID,Slivka Joseph D.4,Fluerasu Andrei5,Sun Yanwen6,Song Sanghoon6ORCID,Hamerlynck Leo M.2,Miller Alexander H.1,Bhattacharyya Priyadarshini7ORCID,Talapin Dmitri V.38,Williams Garth J.5ORCID,Ginsberg Naomi S.249101112ORCID,Teitelbaum Samuel W.1ORCID

Affiliation:

1. Department of Physics, Arizona State University, Tempe, Arizona 85287, USA

2. Department of Chemistry, University of California, Berkeley, California 94720, USA

3. Department of Chemistry, James Franck Institute, and Pritzker School of Molecular Engineering, University of Chicago, Chicago, Illinois 60637, USA

4. Department of Physics, University of California, Berkeley, California 94720, USA

5. Brookhaven National Laboratory, NSLS-II, Upton, New York 11973, USA

6. Linac Coherent Light Source, SLAC National Accelerator Laboratory, Menlo Park, California 94025, USA

7. School for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, Arizona 85287, USA

8. Center for Nanoscale Materials, Argonne National Laboratory, Argonne, Illinois 60517, USA

9. Molecular Biophysics and Integrated Bioimaging Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA

10. Materials Sciences and Chemical Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, USA

11. Kavli Energy NanoSciences Institute, University of California, Berkeley, California 94720, USA

12. STROBE, NSF Science & Technology Center, Berkeley, California 94720, USA

Abstract

Solution-phase bottom up self-assembly of nanocrystals into superstructures such as ordered superlattices is an attractive strategy to generate functional materials of increasing complexity, including very recent advances that incorporate strong interparticle electronic coupling. While the self-assembly kinetics in these systems have been elucidated and related to the product characteristics, the weak interparticle bonding interactions suggest the superstructures formed could continue to order within the solution long after the primary nucleation and growth have occurred, even though the mechanism of annealing remains to be elucidated. Here, we use a combination of Bragg coherent diffractive imaging and x-ray photon correlation spectroscopy to create real-space maps of supercrystalline order along with a real-time view of the strain fluctuations in aging strongly coupled nanocrystal superlattices while they remain suspended and immobilized in solution. By combining the results, we deduce that the self-assembled superstructures are polycrystalline, initially comprising multiple nucleation sites, and that shear avalanches at grain boundaries continue to increase crystallinity long after growth has substantially slowed. This multimodal approach should be generalizable to characterize a breadth of materials in their native chemical environments, thus extending the reach of high-resolution coherent x-ray characterization to the benefit of a much wider range of physical systems. Published by the American Physical Society 2024

Funder

Basic Energy Sciences

Office of Science

National Science Foundation

Arnold and Mabel Beckman Foundation

National Defense Science and Engineering Graduate

Camille and Henry Dreyfus Foundation

David and Lucile Packard Foundation

Publisher

American Physical Society (APS)

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