Department of Materials Science and Engineering, Korea University, Seoul, 02841, Republic of Korea.
Department of Semiconductor Systems Engineering, Korea University, Seoul, 02841, Republic of Korea.
Small. 2017 Dec;13(47). doi: 10.1002/smll.201702534. Epub 2017 Oct 27.
All-solution processed, high-performance wearable strain sensors are demonstrated using heterostructure nanocrystal (NC) solids. By incorporating insulating artificial atoms of CdSe quantum dot NCs into metallic artificial atoms of Au NC thin film matrix, metal-insulator heterostructures are designed. This hybrid structure results in a shift close to the percolation threshold, modifying the charge transport mechanism and enhancing sensitivity in accordance with the site percolation theory. The number of electrical pathways is also manipulated by creating nanocracks to further increase its sensitivity, inspired from the bond percolation theory. The combination of the two strategies achieves gauge factor up to 5045, the highest sensitivity recorded among NC-based strain gauges. These strain sensors show high reliability, durability, frequency stability, and negligible hysteresis. The fundamental charge transport behavior of these NC solids is investigated and the combined site and bond percolation theory is developed to illuminate the origin of their enhanced sensitivity. Finally, all NC-based and solution-processed strain gauge sensor arrays are fabricated, which effectively measure the motion of each finger joint, the pulse of heart rate, and the movement of vocal cords of human. This work provides a pathway for designing low-cost and high-performance electronic skin or wearable devices.
利用异质结构纳米晶(NC)固体,展示了全溶液处理的高性能可穿戴应变传感器。通过将 CdSe 量子点 NC 的绝缘人工原子纳入 Au NC 薄膜基质的金属人工原子中,设计了金属-绝缘体异质结构。这种混合结构导致接近渗流阈值的移动,根据位渗流理论改变电荷输运机制并提高灵敏度。通过创建纳米裂纹来操纵电通路的数量,进一步提高其灵敏度,灵感来自键渗流理论。这两种策略的结合实现了高达 5045 的应变系数,这是基于 NC 的应变计中记录到的最高灵敏度。这些应变传感器具有高可靠性、耐用性、频率稳定性和可忽略的滞后性。研究了这些 NC 固体的基本电荷输运行为,并开发了组合的位和键渗流理论,以阐明其增强灵敏度的起源。最后,制造了基于全 NC 和溶液处理的应变计传感器阵列,可有效测量每个手指关节的运动、心率的脉冲和人类声带的运动。这项工作为设计低成本、高性能的电子皮肤或可穿戴设备提供了途径。