Sung Minchul, Oh Min Jun, Wang Tiancheng, Ahn Jaeyong, Oh Joon Hak, Stebe Kathleen J, Lee Daeyeon, Hwang Geelsu, Kim Jin Woong
School of Chemical Engineering, Sungkyunkwan University, Suwon 16419, Republic of Korea.
Department of Chemical and Biomolecular Engineering, School of Engineering and Applied Sciences, University of Pennsylvania, Philadelphia, Pennsylvania 19104, United States.
ACS Omega. 2025 Apr 11;10(15):15629-15636. doi: 10.1021/acsomega.5c00912. eCollection 2025 Apr 22.
A metal-oxide-decorated mesoporous silica (MOMS) chemiresistor platform enables the selective detection of disease-specific volatile organic compounds (VOCs) in exhaled breath. Functionalization of these mesoporous structures with metals and metal oxides facilitates the detection of a wide range of VOCs. To create a sensing architecture with a bicontinuous morphology that optimizes molecular diffusion and electron transport pathways, we employ physically confined polymerization-induced phase separation (PC-PIPS) to fabricate template-directed mesoporous structures with controlled film thicknesses ranging from 1 to 5 μm. Incorporation of metal oxides (SnO, ZnO) and noble metals (Pt, Au) forms p-n heterojunctions, enhancing sensitivity and selectivity through modulation of electron depletion layers. The MOMS chemiresistors demonstrate distinct response patterns toward key biomarkers, including hydrogen sulfide (periodontal disease), toluene (gingivitis), formaldehyde (oral carcinoma), and acetone (diabetes mellitus). Response magnitudes range from 1.75-5.66 at 10 ppm to 5.56-12.13 at 100 ppm of HS, with unique electronic signatures, enabling identification of complex gas mixtures. This scalable and versatile fabrication approach establishes MOMS chemiresistors as a promising platform for noninvasive, early-stage disease detection via breath analysis.
一种金属氧化物修饰的介孔二氧化硅(MOMS)化学电阻平台能够选择性检测呼出气体中疾病特异性挥发性有机化合物(VOCs)。这些介孔结构用金属和金属氧化物进行功能化,有助于检测多种VOCs。为了创建具有双连续形态的传感结构,以优化分子扩散和电子传输途径,我们采用物理受限的聚合诱导相分离(PC-PIPS)来制造模板导向的介孔结构,其薄膜厚度控制在1至5μm范围内。掺入金属氧化物(SnO、ZnO)和贵金属(Pt、Au)形成p-n异质结,通过调节电子耗尽层提高灵敏度和选择性。MOMS化学电阻对关键生物标志物表现出不同的响应模式,包括硫化氢(牙周病)、甲苯(牙龈炎)、甲醛(口腔癌)和丙酮(糖尿病)。在10 ppm的HS下,响应幅度范围为1.75 - 5.66,在100 ppm时为5.56 - 12.13,具有独特的电子特征,能够识别复杂的气体混合物。这种可扩展且通用的制造方法将MOMS化学电阻确立为通过呼吸分析进行无创、早期疾病检测的有前途的平台。