Mixed Monolayers of Spiropyrans Maximize Tunneling Conductance Switching by Photoisomerization at the Molecule–Electrode Interface in EGaIn Junctions
Author(s) -
Sumit Kumar,
Jochem T. van Herpt,
Régis Y. N. Gengler,
Ben L. Feringa,
Petra Rudolf,
Ryan C. Chiechi
Publication year - 2016
Publication title -
journal of the american chemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.115
H-Index - 612
eISSN - 1520-5126
pISSN - 0002-7863
DOI - 10.1021/jacs.6b06806
Subject(s) - monolayer , chemistry , spiropyran , photoisomerization , conductance , quantum tunnelling , electrode , fermi level , molecular switch , break junction , self assembled monolayer , chemical physics , molecule , photochemistry , molecular physics , analytical chemistry (journal) , photochromism , optoelectronics , condensed matter physics , isomerization , materials science , organic chemistry , quantum mechanics , electron , biochemistry , physics , catalysis
This paper describes the photoinduced switching of conductance in tunneling junctions comprising self-assembled monolayers of a spiropyran moiety using eutectic Ga-In top contacts. Despite separation of the spiropyran unit from the electrode by a long alkyl ester chain, we observe an increase in the current density J of a factor of 35 at 1 V when the closed form is irradiated with UV light to induce the ring-opening reaction, one of the highest switching ratios reported for junctions incorporating self-assembled monolayers. The magnitude of switching of hexanethiol mixed monolayers was higher than that of pure spiropyran monolayers. The first switching event recovers 100% of the initial value of J and in the mixed-monolayers subsequent dampening is not the result of degradation of the monolayer. The observation of increased conductivity is supported by zero-bias DFT calculations showing a change in the localization of the density of states near the Fermi level as well as by simulated transmission spectra revealing positive resonances that broaden and shift toward the Fermi level in the open form.
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