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Updated: Jan 29, 2026

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics
Published on: January 19, 2018
MoSe2/SWNT core-shell hybrids with space-charge-limited conduction and nonlinear dynamics for in-materio physical
Alif Syafiq Kamarol Zaman1, Saman Azhari2,3, Muzhen Xu3
1Graduate School of Life Science and Systems Engineering, Kyushu Institute of Technology, 2-4 Hibikino, Wakamatsu, Kitakyushu, 808-0196 Japan. tanaka@brain.kyutech.ac.jp.
Abstract:
This study presents the synthesis, characterization, and application of molybdenum diselenide/single-walled carbon nanotube (MoSe2/SWNT) core-shell structures as a new platform for in-materio physical reservoir computing. The hybrid material was fabricated via a modified hydrothermal process, yielding a conductive SWNT network uniformly coated with semiconducting MoSe2. Structural and electrical characterization studies (XPS, XRD, SEM, TEM, I-V, and EIS) confirm a crystalline fibrous core-shell morphology that exhibits a voltage-driven transition from a capacitive high-resistance state to a space-charge-limited conduction (SCLC) regime. Physical reservoir computing based on MoSe2/SWNTs thus leverages SCLC dynamics, where trap-controlled transport generates higher harmonics and short-term memory, providing the essential nonlinearity and fading memory required for temporal processing. Consequently, the MoSe2/SWNT device achieves strong performance in benchmark tasks, including waveform reconstruction (NMSE < 0.1 across multiple periodic functions), NARMA2 time-series prediction (90% accuracy), and memory capacity evaluation. These results establish a direct link between device physics and computational capability, highlighting MoSe2/SWNT hybrids as a scalable candidate for next-generation neuromorphic hardware.
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