The solid-contact ion-selective electrodes (SC-ISEs) are a type of potentiometric analytical device with features of rapid response, online analysis, and miniaturization. The state-of-the-art SC-ISEs are composed of a solid-contact (SC) layer and an ion-selective membrane (ISM) layer with respective functions of ion-to-electron transduction and ion recognition. Two challenges for the SC-ISEs are the water-layer formation at the SC/ISM phase boundary and the leaking of ISM components, which are both originated from the ISM. Herein, we report a type of SC-ISE based on classic Li-ion battery materials as the SC layer without using the ISM for potentiometric lithium-ion sensing. Both LiFePO- and LiMnO-based SC-ISEs display good Li sensing properties (sensitivity, selectivity, and stability). The proposed LiFePO electrode exhibits comparable sensitivity and a linear range to conventional SC-ISEs with ISM. Owing to the nonexistence of ISM, the LiFePO electrode displays high potential stability. Besides, the LiMnO electrode shows a Nernstian response toward Li sensing in a human blood serum solution. This work emphasizes the concept of non-ISM-based SC-ISEs for potentiometric ion sensing.
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http://dx.doi.org/10.1021/acs.analchem.0c05422 | DOI Listing |
Nat Commun
December 2024
Key Laboratory of Advanced Technologies of Materials (Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu, 610031, China.
Piezoelectric electronics possess great potential in flexible sensing and energy harvesting applications. However, they suffer from low electromechanical performance in all-organic piezoelectric systems due to the disordered and weakly-polarized interfaces. Here, we demonstrated an all-polymer piezo-ionic-electric electronics with PVDF/Nafion/PVDF (polyvinylidene difluoride) sandwich structure and regularized ion-electron interfaces.
View Article and Find Full Text PDFSignal Transduct Target Ther
December 2024
Department of Orthopedic Surgery/Sports Medicine Center, Southwest Hospital, Army Medical University, Chongqing, 400038, China.
Metabolites can double as a signaling modality that initiates physiological adaptations. Metabolism, a chemical language encoding biological information, has been recognized as a powerful principle directing inflammatory responses. Cytosolic pH is a regulator of inflammatory response in macrophages.
View Article and Find Full Text PDFNat Commun
December 2024
Living Systems Institute, University of Exeter, Stocker Road, Exeter, Devon, EX4 4QD, UK.
The radical pair mechanism accounts for the magnetic field sensitivity of a large class of chemical reactions and is hypothesised to underpin numerous magnetosensitive traits in biology, including the avian compass. Traditionally, magnetic field sensitivity in this mechanism is attributed to radical pairs with weakly interacting, well-separated electrons; closely bound pairs were considered unresponsive to weak fields due to arrested spin dynamics. In this study, we challenge this view by examining the FAD-superoxide radical pair within cryptochrome, a protein hypothesised to function as a biological magnetosensor.
View Article and Find Full Text PDFBrain Behav Immun
December 2024
Wolfson Sensory, Pain and Regeneration Centre, King's College London, Guy's Campus, London Bridge, London SE1 1UL, UK. Electronic address:
Angiotensin II is well known to have an important influence on blood pressure, mediated via the angiotensin II type 1 receptor (AT1R), and more recent studies have shown that angiotensin II may play an important additional role in eliciting pain via a distinct action at the angiotensin II type 2 receptor (AT2R). Signalling pathways that link activation of AT2R to a sensation of pain are, however, incompletely understood. Here we use rodent inflammatory pain models to confirm that selective activation of AT2R triggers aversive responses, and that these are abolished by either antagonism or genetic deletion of AT2R.
View Article and Find Full Text PDFSpectrochim Acta A Mol Biomol Spectrosc
December 2024
Cancer Nanomedicine Lab, Department of Zoology, Periyar University, Salem, TN, India.
We designed a new cyanide sensing probe by one-step synthesis and evaluated it using UV-vis and fluorescent techniques. The active moiety of (Z)-3-(4-(methylthio) phenyl)-2-(4-nitrophenyl) acrylonitrile (NCS) demonstrated fluorescence. The probe NCS showed turn-off fluorescence in the presence of cyanide (CN¯), which has a higher selectivity and sensitivity than other anions.
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