压电
材料科学
膜
钻石
微晶
晶界
电压
极化(电化学)
复合材料
压电系数
聚晶金刚石
电场
凝聚态物理
光电子学
不对称
压电传感器
电位
机电学
边值问题
作者
Jixiang Jing,Bicong Wang,Yumeng Luo,Yicheng Wang,Zhongqiang Wang,Yiyao Liu,Dong-Keun Ki,Xinghua Shi,Qi Wang,Kwai Hei Li,Yuan Lin,Zhiqin Chu
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2026-03-18
卷期号:12 (12): eaea8318-eaea8318
标识
DOI:10.1126/sciadv.aea8318
摘要
Diamonds have been regarded as nonpiezoelectric materials for more than one century. Here, we uncover a notable piezoelectric effect in ultrathin and ultraflexible polycrystalline diamond membranes. Our experiments show that the piezoelectricity depends on membrane thickness, with peak response (exhibiting a piezoelectric voltage coefficient of ~82.2 millivolt meters per newton that surpasses many conventional piezoelectric materials) seen in ~5-micrometer-thick membranes. First-principles calculations reveal that the unexpected piezoelectricity in polycrystalline membranes originates from local asymmetry induced by grain boundaries, which alter the electric polarization within a finite region near the boundary during deformation. This finding together with the outstanding properties of our membranes is expected to catalyze the exploration and development of diamond-based applications in energy harvesting, intelligent sensing, and wearable electronics.
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