驻极体
材料科学
共形映射
触觉技术
执行机构
渲染(计算机图形)
虚拟现实
高保真
忠诚
计算机图形学(图像)
人机交互
计算机科学
模拟
复合材料
声学
人工智能
物理
数学分析
电信
数学
作者
Yunfei Bai,Haolong Zhang,Dongkai Wang,Min Zhang
标识
DOI:10.1021/acsami.5c12456
摘要
The development of high-performance wearable haptic actuators remains challenging for immersive virtual reality (VR) applications due to limitations in voltage efficiency, low-voltage operation, and tactile fidelity. This work presents conformal elastic electret actuators composed of silica and poly(dimethylsiloxane) (PDMS) nanocomposites and liquid-metal (LM) electrodes, which overcome limitations in skin–device mechanical mismatch and energy efficiency. Through parametric polarization optimization under coupled thermal-electric fields (4 MV/m, 180 °C), the actuators demonstrate low threshold voltage (38.2 V) and exceptional strong vibrational output (381 nN/V), which surpass those of conventional dielectric elastomer (DE) actuators (143 nN/V at 1000 V) and hydraulically amplified taxel (HAXEL) systems (214 nN/V at 500 V). The elastomer dip-coating fabrication enables finger–conformal integration, providing 119.9% displacement enhancement and maintaining kilohertz-range waveform fidelity under various driving signals compared to nonconformal configurations. Wearable haptic interaction systems with five-channel actuators achieve 95.4% accuracy in remote character transmission (635 trials) and facilitate proprioceptive guidance in piano pedagogy. When integrated into the VR system, the actuators achieve 91.2% discrimination of standardized textures ( R a = 0.8–12.5 μm) through spectral encoding of the surface roughness. This technology bridges the gap between wearable haptics and immersive VR, advancing applications in telematics, skill training, and virtual texture rendering.
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