Qin Jin-Xu, Shen Cheng-Long, Zhang Wu-You, Deng Yuan, Lai Shou-Long, Lv Chao-Fan, Liu Hang, Zhang Ying-Jie, Liu Lan, Li Lei, Yang Xi-Gui, Shan Chong-Xin
Henan Key Laboratory of Diamond Optoelectronic Material and Devices, Key Laboratory of Integrated Circuit, Ministry of Education, School of Physics, Zhengzhou University, Zhengzhou, 450052, China.
School of Computational Science and Electronics, Hunan Institute of Engineering, Xiangtan, 411104, China.
Adv Sci (Weinh). 2025 Jun;12(21):e2414611. doi: 10.1002/advs.202414611. Epub 2025 Apr 26.
Gas-phase water molecule sensors are essential in scientific, industrial, and environmental applications, playing a crucial role in ensuring human safety, monitoring pollution, and optimizing processes. However, developing gas-phase water sensors with high sensitivity remains a significant challenge. Herein, the effect of molecular adsorption on capacitive response is explored, and a facile surface engineering strategy to achieve sensitive carbon nanodots (CDs)-based sensors for HO is demonstrated.hydrophilic raw precursor is utilized to prepare the hydrophilic CDs and further employ these CDs as active media in the capacitive sensors, demonstrating how surface adsorption influences the capacitive response to HO molecules. By applying surface engineering, the molecular affinity potential of CDs is regulated, resulting in sensors that exhibit a broad detection range from 11% to 98% relative humidity (RH), with a remarkable sensitivity of 3.3 × 10 pF/RH and an impressive response of 1.8 × 10% at 98% RH. These CDs-based sensors present great potential for applications in respiratory monitoring, information exchange, contactless recognition of finger trajectories, etc. The findings unveil the unique influence of molecular affinity on capacitive response, opening new avenues for the design and applications of highly sensitive molecular sensors.
气相水分子传感器在科学、工业和环境应用中至关重要,在确保人类安全、监测污染和优化流程方面发挥着关键作用。然而,开发具有高灵敏度的气相水传感器仍然是一项重大挑战。在此,探索了分子吸附对电容响应的影响,并展示了一种简便的表面工程策略,以实现用于HO的基于碳纳米点(CDs)的灵敏传感器。利用亲水性原料前驱体制备亲水性CDs,并进一步将这些CDs用作电容式传感器中的活性介质,展示了表面吸附如何影响对HO分子的电容响应。通过应用表面工程,调节了CDs的分子亲和势,从而得到的传感器具有从11%到98%相对湿度(RH)的宽检测范围,在98%RH时具有3.3×10 pF/RH的显著灵敏度和1.8×10%的令人印象深刻的响应。这些基于CDs的传感器在呼吸监测、信息交换、手指轨迹的非接触识别等应用中具有巨大潜力。这些发现揭示了分子亲和性对电容响应的独特影响,为高灵敏度分子传感器的设计和应用开辟了新途径。