Wearable Formaldehyde Dosimeter for Field-Ready Monitoring of Occupational Exposure and Indoor Air Quality via an
Simin Ye1,2, Zhankuo Zhang1, Li Yang1
1Key Laboratory of Green Chemistry & Technology of Ministry of Education, College of Chemistry, Sichuan University, Chengdu 610064, China.
Abstract:
Formaldehyde (HCHO, FA) poses critical health risks ranging from respiratory irritation to carcinogenicity. However, the existing detection strategies often fail to address the dual challenges of on-site acute toxicity monitoring and long-term cumulative exposure assessment. Here, we develop a ratiometric fluorescent sensing platform synergizing the solid-phase fluorescence internal filtering effect (SPFFE) with Hantzsch reaction chemistry, enabling three-tier FA analysis: (1) For complex matrices, SPFFE-separated gas-liquid phase detection achieves 0.03 mg/L sensitivity without pretreatment. (2) For indoor air monitor, 30 min passive sampling delivers 0.01 ppmv visual detection, correlating with WHO acute exposure limits. (3) A wearable paper-based dosimeter quantifies time-weighted average exposure (8-h detection window) through a cumulative signal. Field deployment revealed substantial spatial HCHO variations: bedrooms (0.02-0.07 ppmv), living rooms (0.09-0.12 ppmv), and study rooms (0.31-0.49 ppmv) with enclosed cabinets/drawers exceeded safety limits by 7.5-17.3×, highlighting microenvironmental risks from wood-panel emissions. Wearable dosimetry captured spatiotemporal exposure dynamics (6.3-22.5 vs 1.2-4.8 ppmv·min in high/low emission zones), demonstrating 89% peak exposures during cabinet access and >82% dose contribution from airflow-modulated panel emissions, informing activity-dependent mitigation strategies. This dual-mode system bridges critical gaps between regulatory compliance monitoring and personalized exposure tracking, particularly demonstrating utility for high-risk occupations (3.1-8.7× higher exposure than residential scenarios in decoration workers). The technology establishes a scalable framework for implementing "detect-to-protect" strategies in environmental health management.


