School of Chemistry & Chemical Engineering, Yantai University, Yantai 264005, China.
State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian 116024, China.
Molecules. 2022 Nov 1;27(21):7431. doi: 10.3390/molecules27217431.
With several major polarity and weak optical properties, the sensitive detection of HCOOH remains a major challenge. Given the special role of HCOOH in assisting in the catalytic hydrogenation process of Ir complexes, HCOOH (as a hydrogen source) could rapidly activate Ir complexes as catalysts and further reduce the substrates. This work developed a facile and sensitive HCOOH fluorescence sensor utilizing an optimal catalytic fluorescence generation system, which consists of the phenyl-pyrazole-type Ir-complex PP-Ir-Cl and the coumarin-type fluorescence probe P-coumarin. The sensor demonstrates excellent sensitivity and specificity for HCOOH and formates; the limits of detection for HCOOH, HCOONa, and HCOOEtN were tested to be 50.6 ppb, 68.0 ppb, and 146.0 ppb, respectively. Compared to previous methods, the proposed sensor exhibits good detection accuracy and excellent sensitivity. Therefore, the proposed HCOOH sensor could be used as a new detection method for HCOOH and could provide a new design path for other sensors.
具有多个主要极性和弱光学性质,HCOOH 的灵敏检测仍然是一个主要挑战。鉴于 HCOOH 在协助 Ir 配合物催化加氢过程中的特殊作用,HCOOH(作为氢源)可以快速激活 Ir 配合物作为催化剂,并进一步还原底物。本工作开发了一种利用最佳催化荧光产生体系的简便、灵敏的 HCOOH 荧光传感器,该体系由苯并吡唑型 Ir 配合物 PP-Ir-Cl 和香豆素型荧光探针 P-香豆素组成。该传感器对 HCOOH 和甲酸盐具有优异的灵敏度和选择性;测试了 HCOOH、HCOONa 和 HCOOEtN 的检出限分别为 50.6 ppb、68.0 ppb 和 146.0 ppb。与先前的方法相比,所提出的传感器具有良好的检测准确性和出色的灵敏度。因此,所提出的 HCOOH 传感器可用作 HCOOH 的新检测方法,并可为其他传感器提供新的设计途径。