Rational design of multicomponent nanocomposites toward hierarchical assemblies with design flexibility and structural fidelity

ORAL

Abstract

Current successes on directed self-assembly heavily rely on precision in building block design, composition, and pair interactions. These requirements impose inherent limitations to developing materials beyond nanoscale. In contrast,  biological blends and high-entropy alloys can readily accommodate composition variations while still achieving their intended structures. We hypothesize that diversified chemical complexity and increased composition variety are the key principles for the unique phase behavior. The entropic energy gains will enhance inter-phase miscibility, weaken the dependence on specific pair interactions and enable long-range cooperativity. The hypothesis is validated in complex blends containing small molecules, block copolymer-based supramolecules, and nanoparticles. We obtained hierarchically structured composites with formulation flexibility in the filler size selection and blend composition. Each component is distributed to locally mediate unfavorable interactions, cooperatively mitigate composition fluctuations, and retain structural fidelity. These systematic studies provided a viable pathway to release multiple constraints in the composite design, developed processing conditions to access structural control beyond nanoscale, and demonstrated an entropy-driven behavior in organic/inorganic composites.

*This work was funded by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, Materials Sciences and Engineering Division under Contract No. DE-AC02-05-CH11231 (Organic-Inorganic Nanocomposites KC3104). Scattering studies were done at the Advanced Light Source is supported by the U.S. Department of Energy, Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy under Contract DE-AC02-05CH11231 and at Advanced Photon Source, use of the Advanced Photon Source was supported by the US Department of Energy, Office of Science, Office of Basic Energy Sciences, under Contract DE-AC02-06CH1135.

Publication: Ma, Le, Hejin Huang, Emma Vargo, Jingyu Huang, Christopher L. Anderson, Tiffany Chen, Ivan Kuzmenko et al. "Diversifying Composition Leads to Hierarchical Composites with Design Flexibility and Structural Fidelity." ACS nano (2021).

Presenters

  • Le Ma

    • University of California, Berkeley

Authors

  • Le Ma

    • University of California, Berkeley
  • Hejin Huang

    • Massachusetts Institute of Technology MIT
  • Emma K Vargo

    • University of California, Berkeley
  • Jingyu Huang

    • University of California, Berkeley
  • Christopher L Anderson

    • University of California, Berkeley
  • Tiffany Chen

    • University of California, Berkeley
  • Ivan Kuzmenko

    • Argonne National Laboratory
  • Jan Ilavsky

    • Argonne National Laboratory
  • Cheng Wang

    • Lawrence Berkeley National Laboratory
  • Yi Liu

    • Lawrence Berkeley National Laboratory
  • Peter Ercius

    • Berkeley National Laboratory
    • Lawrence Berkeley National Laboratory
  • Alfredo Alexander-Katz

    • Massachusetts Institute of Technology MIT
    • Massachusetts Institute of Technology MI
  • Ting Xu

    • University of California, Berkeley