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Updated: May 5, 2026

High-Throughput Measurement and Classification of Organic P in Environmental Samples
Published on: June 8, 2011
H⁺ Exchange-Driven ppb-Level and High-Selective Formaldehyde Detection at Room Temperature for Environmental and
Lubing Cai1, Mengyang Pang2, Zhaosong Liu3
1Department of Chemistry, College of Sciences, Northeastern University, Shenyang, Liaoning, 110819, China.
None:
Formaldehyde is both a pervasive air pollutant and a critical breath biomarker for tumor-related diseases, yet its reliable detection remains difficult due to ultralow concentrations and interference from ubiquitous volatile organic compounds (VOCs). Here, an H⁺-exchange strategy is reported that markedly enhances the sensing performance of sodium titanate (Na2Ti3O7, NTO) by introducing abundant surface hydroxyl groups and tuning conduction pathways. In H⁺-exchanged NTO (H-NTO), hydroxyl groups act as selective adsorption sites for formaldehyde, while formaldehyde adsorption simultaneously suppresses surface-proton and internal-electron conduction by increasing the activation energy for proton hopping and generating electron-trapping states. This dual modulation effectively eliminates cross-sensitivity to other VOCs (e.g., methanol), enabling H-NTO to achieve an ultralow detection limit of 2 ppb, a wide dynamic range up to 100 ppm, and stable operation over two months-contrasting with the negligible response of pristine NTO. To demonstrate practical utility, we developed a handheld H-NTO prototype for wireless indoor air-quality monitoring and non-invasive breath-based breast cancer screening. Coupled with machine learning, the system achieved high diagnostic accuracy, establishing H⁺-exchange as a powerful route toward next-generation intelligent formaldehyde sensors.

