Circularly Polarized Light-Induced Microwave Conductivity Measurement: Rapid Screening Technique of Electronic Conductivity in Chiral Molecular Materials

Yun Hee Koo, Yusuke Tsutsui, Mikito Omoto, Yohei Yomogida, Kazuhiro Yanagi, Yuichiro Kato, M. Alejandra Hermosilla-Palacios, Jeffrey Blackburn, Shu Seki

Research output: Contribution to journalArticlepeer-review

Abstract

We developed circularly polarized light-time-resolved microwave conductivity (CPL-TRMC) for investigation of the CPL-dependent photoinduced charge carrier dynamics in chiral materials with chiroptical properties. Chiral R- or S-perylenediimide (PDI) molecular thin films were paired with handedness-sorted (6,5) and (11,-5) single-walled carbon nanotube (SWCNT) films to compose a donor (D)-acceptor (A) system for the spin-dependent charge separation process, and the D-A system was examined through linear and circular polarization-dependent steady-state and time-resolved measurements. The R-PDI-(6,5) film exhibited strong enhancement in circular dichroism (CD) and revealed a reversed transient conductivity signal, relative to the polarity of CD in CPL-TRMC measurement upon excitation of the E11 state, which is interpreted as arising from a spin-dependent initial charge separation process. Through linear polarization-dependent flash photolysis TRMC and circular polarization-resolved femtosecond transient absorption, we could deduce that sub-picosecond intertubular charge separation upon E11 excitation in SWCNT was responsible for the spin-dependent photoconductivity transients observed in CPL-TRMC measurements.
Original languageAmerican English
Pages (from-to)3232-3239
Number of pages8
JournalJournal of Physical Chemistry Letters
Volume16
Issue number13
DOIs
StatePublished - 2025

NREL Publication Number

  • NREL/JA-5900-93170

Keywords

  • charge transfer
  • chirality
  • microwave conductivity
  • nanotube

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