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Prof. Wei ZHAI

National Engineering Research Center for Advanced Polymer Processing Technology, Zhengzhou University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4365-2

Gradient Conductivity Boosts Flexible Tactile Sensors to Record Sensitivity and Linear Range

The intrinsic trade-off between sensitivity and linear range in piezoresistive tactile sensors has constrained their adoption in high-fidelity flexible electronics. This study introduces a layer-by-layer gradient conductivity (LGC) architecture that decouples these competing metrics. Through sequential deposition of conductive layers with decreasing filler content, the LGC resistive layer establishes a monotonic resistance–pressure relationship. The optimized LGC0.4@3 sensor achieves a record sensitivity of 0.4 kPa⁻¹ and a linear range extending to 300 kPa, as evidenced by relative electrical response measurements (Figure 1d). Dynamic monitoring of ground slope changes and convexity/concavity features (Figure 1e,f) confirms real-time operational stability. The gradient design mitigates percolation saturation, enabling linear output across three orders of magnitude. This advance addresses a critical bottleneck in tactile sensing, offering a scalable pathway for robotic proprioception and wearable health monitors. The fabrication protocol is compatible with roll-to-roll processing, with potential for cost parity against commercial capacitive sensors. Industrial translation requires further validation under cyclic loading and environmental aging, but the demonstrated metrics position LGC sensors as a viable alternative for applications demanding both high sensitivity and broad dynamic range.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3496-5

Nacre-Mimetic Electronic Skin Based on Multilayered Ti3C2Tx/Carbon Nanotubes/Thermoplastic Polyurethane Fibrous Mat with Self-Powered Ability for Postural Correction Training

Flexible wearable electronics demand multifunctional e-skins that reconcile high strain sensitivity, wide operating range, low detection limit, air permeability, and self-powered capability. Existing MXene-based sensors suffer from rapid conductive network destruction due to weak inter-sheet interactions, limiting their working range. Inspired by the brick-and-mortar microstructure of natural nacre, a multilayered Ti3C2Tx (MXene)/carbon nanotubes (CNTs)/thermoplastic polyurethane (TPU) fibrous mat was fabricated via electrospinning and spraying. The tunable multilayer architecture yields a gauge factor of 5.8 × 10^4, a sensing range up to 535% strain, a detection limit of 0.15% strain, an 80 ms response time, and good durability. The sensing mechanism relies on the synergistic evolution of a 2D MXene/1D CNT conductive network and synchronous microcrack expansion. The e-skin also functions as a single-electrode triboelectric nanogenerator (TENG) with high output and stability, enabling tactile sensing and powering LEDs. Demonstrations include human physiological signal acquisition, cardiopulmonary resuscitation (CPR) training via smart gloves, and posture correction training for athletes. This nacre-mimetic self-powered e-skin offers a viable route for ergonomics, emergency medical services, and athlete training assessment.