Negative Differential Conductance Due to Extreme Band-Filling in Ionically Gated TiS3 Nanowires

Abstract We demonstrate negative differential conductance (NDC), consistent with extreme band filling, in titanium trisulfide (TiS3) nanowire field-effect transistors (FETs) subject to ionic gating. Electronic-structure calculations connect the NDC to the narrow and nonparabolic nature of the conduction band states in TiS3. These exhibit inflection points at relatively low energies, which become accessible when ionic gating induces extreme carrier concentration (∼1020 cm–3). In contrast with the Gunn effect, which requires electron–phonon scattering to transfer electrons between conduction-band valleys to initiate NDC, the mechanism here derives solely from single-carrier, intraband dynamics. As such, the potential should exist to exploit its associated NDC in ultrafast (i.e., terahertz) electronic devices. Since the NDC ultimately results from the heavily d-orbital character of the conduction-band states of TiS3, this phenomenon need not be unique to this material. This should motivate future studies of other materials with similarly strong nonparabolicity.

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Publication Details

Journal
Nano Letters
Published
2026-09-04
DOI
https://doi.org/10.1021/acs.nanolett.6c02786
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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article

Negative Differential Conductance Due to Extreme Band-Filling in Ionically Gated TiS3 Nanowires

Tula R. Paudel, P. A. Dowben, Alexey Lipatov, F. Bird et al.
Nano Letters
2D Materials and Applications
article

Negative Differential Conductance Due to Extreme Band-Filling in Ionically Gated TiS3 Nanowires

Tula R. Paudel, P. A. Dowben, Alexey Lipatov, F. Bird, U. Singisetti, Alexander Sinitskii, M. D. Randle, A. Datta, D. K. Ferry, A. Kumar
article en

Abstract

Abstract We demonstrate negative differential conductance (NDC), consistent with extreme band filling, in titanium trisulfide (TiS3) nanowire field-effect transistors (FETs) subject to ionic gating. Electronic-structure calculations connect the NDC to the narrow and nonparabolic nature of the conduction band states in TiS3. These exhibit inflection points at relatively low energies, which become accessible when ionic gating induces extreme carrier concentration (∼1020 cm–3). In contrast with the Gunn effect, which requires electron–phonon scattering to transfer electrons between conduction-band valleys to initiate NDC, the mechanism here derives solely from single-carrier, intraband dynamics. As such, the potential should exist to exploit its associated NDC in ultrafast (i.e., terahertz) electronic devices. Since the NDC ultimately results from the heavily d-orbital character of the conduction-band states of TiS3, this phenomenon need not be unique to this material. This should motivate future studies of other materials with similarly strong nonparabolicity.

Nano Letters
University of Nebraska–Lincoln (US), State University of New York (US), Chiba University (JP), South Dakota School of Mines and Technology (US), NTT Basic Research Laboratories (JP), Arizona State University (US)
Division of Materials Research, Basic Energy Sciences
Openalex Percentile: Top 24%
2D Materials and Applications
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