Alkali‐Metal‐Intercalated Percolation Network Regulates Self‐Assembled Electronic Aromatic Molecules

Abstract

In the continuously growing field of correlated electronic molecular crystals, there is significant interest in addressing alkali‐metal‐intercalated aromatic hydrocarbons, in which the possibility of high‐temperature superconductivity emerges. However, searching for superconducting aromatic molecular crystals remains elusive due to their small shielding fraction volume. To exploit this potential, a design principle for percolation networks of technologically important film geometry is indispensable. Here the effect of potassium‐intercalation is shown on the percolation network in self‐assembled aromatic molecular crystals. It is demonstrated that one‐dimensional (1D) dipole pairs, induced by dipole interaction, regulate the conductivity, as well as the electronic and optical transitions, in alkali‐metal‐intercalated molecular electronic crystals. A solid‐solution growth methodology of aromatic molecular films with a broad range of stability is developed to uncover electronic and optical transitions of technological importance. The light‐induced electron interactions enhance the charge‐carrier itinerancy, leading to a switchable metal‐to‐insulator transition. This discovery opens a route for the development of aromatic molecular electronic solids and long‐term modulation of electronic efficacy in nanotechnologically important thin films.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jan 24, 2019
Source ID
10.1002/adma.201807178

Entities

People

  • Guohua Zhong
  • Jason B Benedict
  • Jason N. Armstrong
  • Nam Hoon Lee
  • Saw‐wai Hla
  • Shenqiang Ren
  • Travis Mitchell
  • Yang Li
  • Ying‐shi Guan
  • Yong Hu
  • Yuan Zhang

Organizations

  • Argonne National Laboratory
  • Army Research Office
  • National Science Foundation
  • Shenzhen Institutes of Advanced Technology
  • United States Department of Energy
  • University at Buffalo

Tags

Fields of Study

  • Physics

Readers

  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.
  • Quantum spin resonance or Electron Paramagnetic Resonance spectroscopy.
  • Systems Analysis and Design

Technology Areas

  • Biotechnology
  • Microelectronics
  • Microelectronics - Graphene