English

Tuning the effective spin-orbit coupling in molecular semiconductors

Materials Science 2017-12-19 v2

Abstract

The control of spins and spin to charge conversion in organics requires understanding the molecular spin-orbit coupling (SOC), and a means to tune its strength. However, quantifying SOC strengths indirectly through spin relaxation effects has proven diffi- cult due to competing relaxation mechanisms. Here we present a systematic study of the g-tensor shift in molecular semiconductors and link it directly to the SOC strength in a series of high mobility molecular semiconductors with strong potential for future devices. The results demonstrate a rich variability of the molecular g-shifts with the effective SOC, depending on subtle aspects of molecular composition and structure. We correlate the above g -shifts to spin-lattice relaxation times over four orders of magnitude, from 200 {\mu}s to 0.15 {\mu}s, for isolated molecules in solution and relate our findings for isolated molecules in solution to the spin relaxation mechanisms that are likely to be relevant in solid state systems.

Keywords

Cite

@article{arxiv.1704.01371,
  title  = {Tuning the effective spin-orbit coupling in molecular semiconductors},
  author = {Sam Schott and Erik R. McNellis and Christian B. Nielsen and Hung-Yang Chen and Shun Watanabe and Hisaaki Tanaka and Iain McCulloch and Kazuo Takimiya and Jairo Sinova and Henning Sirringhaus},
  journal= {arXiv preprint arXiv:1704.01371},
  year   = {2017}
}

Comments

Accepted for publication in Nature Communications

R2 v1 2026-06-22T19:08:20.178Z