Wang Yuening, Meng Xiangyu, Shi Wenxiong, Xie Yujiao, Liu Aochi, Xu Lei, Qiu Lin, Song Xiaoyu, Zhang Mingjian, Zhang Jiahao, Yu Jian, Wu Aiguo, Wang Xiaotian, Lin Jie
School of Chemistry, Beihang University, Beijing 100191, China.
School of Basic Medical Sciences, Hebei University, Baoding 071002, China.
Research (Wash D C). 2025 Aug 21;8:0841. doi: 10.34133/research.0841. eCollection 2025.
Volatile organic compounds (VOCs) serve as critical biomarkers in exhaled breath for early-stage cancer patients, and their rapid, trace-level detection holds marked implications for cancer screening. Surface-enhanced Raman scattering (SERS) technology demonstrates strong potential for trace VOC gas detection due to its ultra-high sensitivity and immunity to water interference. However, while surface plasmon resonance (SPR)-free semiconductor substrates offer superior spectral stability and selectivity, their sensitivity toward VOC detection remains suboptimal. This study introduces a novel semiconductor-based SERS substrate composed of copper single atoms anchored on UiO-66 (Cu/UiO-66), achieving a record-low detection limit of 10 parts per billion for VOC gases with a rapid 2-min response time, thereby elevating the gas-sensing performance of SPR-free substrates to unprecedented levels. The exceptional SERS activity originates from the highly delocalized electron properties of single-atomic copper, which effectively facilitates single-atom charge transfer processes. Concurrently, the incorporation of copper single atoms modulates the band structure of UiO-66, substantially enhancing the coupling resonance between the substrate and target molecules. In simulated breath tests mimicking lung cancer patients' exhalations, Cu/UiO-66 exhibits remarkable VOC recognition capability and robust anti-interference performance. This work pioneers a new paradigm for ultra-sensitive, rapid detection of trace VOCs in exhaled breath, holding substantial promise for early cancer diagnostics and clinical translation.
挥发性有机化合物(VOCs)是早期癌症患者呼出气体中的关键生物标志物,对其进行快速、痕量检测对癌症筛查具有重要意义。表面增强拉曼散射(SERS)技术因其超高灵敏度和抗水干扰能力,在痕量VOC气体检测方面显示出强大潜力。然而,尽管无表面等离子体共振(SPR)的半导体基底具有优异的光谱稳定性和选择性,但其对VOC检测的灵敏度仍不尽人意。本研究引入了一种新型的基于半导体的SERS基底,由锚定在UiO-66上的铜单原子组成(Cu/UiO-66),实现了对VOC气体创纪录的低检测限,即十亿分之十,响应时间仅需2分钟,从而将无SPR基底的气敏性能提升到了前所未有的水平。这种卓越的SERS活性源于单原子铜高度离域的电子特性,有效地促进了单原子电荷转移过程。同时,铜单原子的引入调节了UiO-66的能带结构,显著增强了基底与目标分子之间的耦合共振。在模拟肺癌患者呼气的呼吸测试中,Cu/UiO-66表现出卓越的VOC识别能力和强大的抗干扰性能。这项工作开创了一种超灵敏、快速检测呼出气体中痕量VOCs的新范式,对早期癌症诊断和临床转化具有巨大的潜力。