Using automated synthesis to understand the role of side chains on molecular charge transport

Abstract

The development of next-generation organic electronic materials critically relies on understanding structure-function relationships in conjugated polymers. However, unlocking the full potential of organic materials requires access to their vast chemical space while efficiently managing the large synthetic workload to survey new materials. In this work, we use automated synthesis to prepare a library of conjugated oligomers with systematically varied side chain composition followed by single-molecule characterization of charge transport. Our results show that molecular junctions with long alkyl side chains exhibit a concentration-dependent bimodal conductance with an unexpectedly high conductance state that arises due to surface adsorption and backbone planarization, which is supported by a series of control experiments using asymmetric, planarized, and sterically hindered molecules. Density functional theory simulations and experiments using different anchors and alkoxy side chains highlight the role of side chain chemistry on charge transport. Overall, this work opens new avenues for using automated synthesis for the development and understanding of organic electronic materials.

Document Details

Document Type
Pub Defense Publication
Publication Date
Apr 19, 2022
Source ID
10.1038/s41467-022-29796-2

Entities

People

  • Charles M Schroeder
  • Edward R. Jira
  • Hao Yu
  • Jeffrey S. Moore
  • Jialing Li
  • Martin D. Burke
  • Nicholas H. Angello
  • Songsong Li
  • Ying Diao

Organizations

  • United States Department of Defense

Tags

Readers

  • Molecular and Cellular Biochemistry
  • Organic Chemistry
  • Systems Analysis and Design

Technology Areas

  • Microelectronics
  • Space