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Crown@ZIF-67/MXene Sensor for Ultrasensitive and Selective On-Site Tl + Monitoring

作者:Zhen Yang, Ruixing Huang, Xiaoling Zhang, ChengXue Ma, Sisi Wu, Hongxia Liu, Xiaoliu Huangfu · 发表于:ACS Applied Materials & Interfaces · 年份:2026 · DOI:10.1021/acsami.5c20381 · 被引用次数:3 · 研究领域:Thallium and Germanium Studies、MXene and MAX Phase Materials、Boron and Carbon Nanomaterials Research

Thallium (Tl) is a highly toxic priority pollutant, yet reliable monitoring remains challenging because many Tl sensors lack sufficient selectivity, portability, and durability in complex waters. A tightly coupled Crown@ZIF-67/MXene composite was assembled and integrated onto a screen-printed carbon electrode (SPCE) to create a portable electrochemical sensor for Tl + . Crown@ZIF-67/MXene was synthesized via an in situ crystallization route, in which 18-crown-6 was introduced during ZIF-67 growth so that ZIF-67 nucleated and grew around the crown ether while simultaneously anchoring onto MXene to form a tightly coupled composite. Under optimized square-wave anodic stripping voltammetry (SWASV), Crown@ZIF-67/MXene/SPCE provides a wide linear range (0.1–300 μg L –1 ) and a low limit of detection (0.036 μg L –1 ), while maintaining accurate quantification in the presence of coexisting ions (measurement error <2.8%). The performance is attributed to crown-ether-based Tl + recognition, ZIF-67-enabled high-surface-area enrichment, and MXene-facilitated charge transport. Validation in tap water, Yangtze River water, Minzhu Lake water, and zinc-oxide-plant wastewater demonstrates close agreement with ICP-MS, supporting the applicability of this method in environmentally relevant water matrices. After continuous exposure to real wastewater for 5 days, the response deviates by <10% relative to a fresh electrode, indicating antifouling behavior and operational stability. Overall, this w...