Sub-Band Filling, Mott-like Transitions, and Ion Size Effects in C<sub>60</sub> Single Crystal Electric Double Layer Transistors.
basic_science · Level V
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- Record sourced from PubMed, PMID 35243860.
- Also identified by DOI 10.1021/acsnano.2c00222.
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Abstract
Electric double layer transistors (EDLTs) based on C<sub>60</sub> single crystals and ionic liquid gates display pronounced peaks in sheet conductance versus gate-induced charge. Sheet conductance is maximized at electron densities near 0.5 e/C<sub>60</sub> and is suppressed near 1 e/C<sub>60</sub>. The conductance suppression depends markedly on the choice of ionic liquid cation, with small cations favoring activated transport and essentially a complete shutdown of conductance at ∼1 e/C<sub>60</sub> and larger cations favoring band-like transport, higher overall conductances at all charge densities up to 1.7 e/C<sub>60</sub>, and weaker suppression at 1 e/C<sub>60</sub>. Displacement current measurements on C<sub>60</sub> EDLTs with small cations show clear evidence of sub-band filling at 1 e/C<sub>60</sub>, which correlates very well with the minimum in the C<sub>60</sub> sheet conductance. Overall, the data suggest a significant Mott-Hubbard-like energy gap opens up in the surface density of states for C<sub>60</sub> crystals gated with small cations. The causes of this energy gap may include both electron-electron repulsion and electron-cation attraction at the crystal/ionic liquid interface. The energy gap suppresses the insulator-to-metal transition in C<sub>60</sub> EDLTs, but it can be manipulated by choice of electrolyte.