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Research PaperResearchia:202608.25045

Electrostatic control of Li+ density and transport rate in double-gated van der Waals devices

E. Hoenig

Abstract

Ion transport in crystalline hosts is controlled by an applied potential that simultaneously sets ionic distribution and transport rate, restricting operation to a one-dimensional control space. Here we show that the transport rate of Li+ ions in double-gated van der Waals devices can be modulated while the system occupies fixed ionic-density states. We measure the ionic current along the van der Waals interface between hexagonal boron nitride and graphene or MoS2 while simultaneously monitoring...

Submitted: August 25, 2026Subjects: Chemistry; Chemistry

Description / Details

Ion transport in crystalline hosts is controlled by an applied potential that simultaneously sets ionic distribution and transport rate, restricting operation to a one-dimensional control space. Here we show that the transport rate of Li+ ions in double-gated van der Waals devices can be modulated while the system occupies fixed ionic-density states. We measure the ionic current along the van der Waals interface between hexagonal boron nitride and graphene or MoS2 while simultaneously monitoring the in-plane electronic response. The ionic current exhibits pronounced hysteresis, with plateaus marking discrete ionic-density states balanced by electronic charge, while an independently tuneable electrochemical-potential drop controls the ionic transport rate. The devices sustain over 1,000 switching cycles and function as hybrid ionic-electronic transistors capable of logic operations and memory retention, with ON/OFF ratios exceeding two orders of magnitude. This work demonstrates a two-dimensional control space for ion transport in layered materials, opening new operating regimes for energy storage and ion-based computing.


Source: arXiv:2608.23227v1 - http://arxiv.org/abs/2608.23227v1 PDF: https://arxiv.org/pdf/2608.23227v1 Original Link: http://arxiv.org/abs/2608.23227v1

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Date:
Aug 25, 2026
Topic:
Chemistry
Area:
Chemistry
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