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A platinum oxide-based microvoltammetric pH electrode suitable for physiological investigations

机译:适用于生理研究的基于氧化铂的微伏型pH电极

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Attempts to develop miniaturised pH electrodes for in vivo monitoring have received much attention in recent years. Continuous real-time pH measurements may be predictive of potentially dangerous deviations in metabolic events that could improve patient prognosis. Herein, we report the in vitro investigation of a physiologically relevant, Pt oxide-based microvoltammetric pH electrode. Cycling through the potential window range -0.65 V to +0.8 V vs. SCE, gave rise to well-established monolayer oxide (MO) and hydrogen (H-2) adsorption redox peaks in aqueous solution. The H-2 desorption and MO reduction peaks demonstrated pH dependent, linear responses (49 +/- 11 mV pH(-1) and 76 +/- 4 mV pH(-1) respectively), following pre-activation of the electrode surface in HCl. Since in vivo monitoring is at the core of this design, the effect of incorporating a miniaturised pseudo reference electrode (PRE) was determined. The Ag/AgCl PRE demonstrated near Nernstian behaviour for the MO reduction peak (58 +/- 5 mV pH(-1)) and sub-Nernstian behaviour (43 +/- 6 mV pH(-1)) for its H-2 desorption counterpart. Finally, a preliminary in vivo recording performed in the striatum of a freely moving mouse confirmed that the MO reduction peak was maintained under physiological conditions. These findings support the ability of the Pt oxide-based pH electrode to perform continuous, stable recordings in vivo and warrants further characterisation.
机译:近年来,在体内监测中开发小型化pH电极的尝试得到了很多关注。连续的实时pH测量可以预测可以改善患者预后的代谢事件中的潜在危险偏差。在此,我们报告了体外研究生理学相关的PT氧化物基微伏电压pH电极。通过潜在的窗口范围循环-0.65V至+ 0.8V与SCE,在水溶液中产生了良好的单层氧化物(MO)和氢气(H-2)吸附氧化还原峰。在电极表面预激活之后,H-2解吸和Mo减少峰分别显示pH依赖性,线性响应(分别为49 +/- 11mV pH(-1)和76 +/- 4mV pH(-1))在HCL。由于在体内监测处于该设计的核心,因此确定了结合小型化伪参考电极(PRE)的效果。对于其H-2的Mo降低峰(58 +/- 5mV pH(-1))和子宫颈行为(43 +/- 6 mV pH(-1))的NERNSTIAN行为附近显示解吸对应物。最后,在自由移动小鼠的纹章中进行的体内记录中的初步记录证实Mo降低峰在生理条件下保持。这些发现支持PT氧化物基PH电极在体内进行连续,稳定的记录的能力,并提供进一步表征。

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