A Fully‐Bioresorbable Nanostructured Molybdenum Oxide‐Based Electrode for Continuous Multi‐Analyte Electrochemical Sensing

IF 4.3 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY Advanced Materials Interfaces Pub Date : 2024-06-20 DOI:10.1002/admi.202400054
Catarina Fernandes, Filippo Franceschini, Jorid Smets, Olivier Deschaume, Nurul Rusli, Carmen Bartic, Rob Ameloot, Kitty Baert, Jon Ustarroz, Irene Taurino
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Abstract

Bioresorbable electrochemical sensors remain mostly unexplored despite their ability to provide continuous in situ measurements of critical biomarkers. The primary challenge arises from the direct exposure of the electrodes’ thin metal films to biofluids, which poses difficulties in ensuring both proper operational lifetimes and sensing performance. Molybdenum (Mo) presents itself as a promising biometal due to its uniquely gradual dissolution in biofluids, facilitated by the formation of a slower‐dissolving MoOx surface layer. Consequently, carefully engineered MoOx films can endow transient electrochemical sensors with unparalleled stability during extended operational lifetimes. Herein an unprecedented sensor architecture achieved via the unique pairing of sputtered Mo and MoOx thin films, probed as a pH and dissolved oxygen sensor is reported. Compared to a bare Mo electrode, a bilayer Mo+MoOx electrode subjected to post‐deposition annealing (400 °C, 60 min, N2 environment) displayed a largely improved stability (>24 h) in solution and demonstrated predictable functionality during ongoing film dissolution at 37 °C. Collectively, this work establishes a pioneering strategy for the fabrication of reliable and clinically relevant implantable electrochemical sensors.

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基于氧化钼的完全可生物吸收的纳米结构电极,用于多种分析物的连续电化学传感
尽管生物可吸收电化学传感器能够对重要的生物标志物进行连续的原位测量,但其大部分功能仍未得到开发。主要的挑战来自电极的金属薄膜直接暴露于生物流体,这给确保适当的工作寿命和传感性能带来了困难。钼(Mo)是一种很有前途的生物金属,因为它能在生物流体中逐渐溶解,而溶解速度较慢的氧化钼(MoOx)表面层的形成又促进了钼的溶解。因此,经过精心设计的氧化钼薄膜可以使瞬态电化学传感器在更长的工作寿命期间具有无与伦比的稳定性。本文报告了一种前所未有的传感器结构,它是通过独特的溅射钼和氧化钼薄膜配对实现的,可作为 pH 和溶解氧传感器进行探测。与裸 Mo 电极相比,经过沉积后退火(400 °C,60 分钟,N2 环境)处理的双层 Mo+MoOx 电极在溶液中的稳定性大大提高(24 小时),并在 37 °C的薄膜溶解过程中表现出可预测的功能。总之,这项工作为制造可靠且与临床相关的植入式电化学传感器确立了开创性的战略。
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来源期刊
Advanced Materials Interfaces
Advanced Materials Interfaces CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
8.40
自引率
5.60%
发文量
1174
审稿时长
1.3 months
期刊介绍: Advanced Materials Interfaces publishes top-level research on interface technologies and effects. Considering any interface formed between solids, liquids, and gases, the journal ensures an interdisciplinary blend of physics, chemistry, materials science, and life sciences. Advanced Materials Interfaces was launched in 2014 and received an Impact Factor of 4.834 in 2018. The scope of Advanced Materials Interfaces is dedicated to interfaces and surfaces that play an essential role in virtually all materials and devices. Physics, chemistry, materials science and life sciences blend to encourage new, cross-pollinating ideas, which will drive forward our understanding of the processes at the interface. Advanced Materials Interfaces covers all topics in interface-related research: Oil / water separation, Applications of nanostructured materials, 2D materials and heterostructures, Surfaces and interfaces in organic electronic devices, Catalysis and membranes, Self-assembly and nanopatterned surfaces, Composite and coating materials, Biointerfaces for technical and medical applications. Advanced Materials Interfaces provides a forum for topics on surface and interface science with a wide choice of formats: Reviews, Full Papers, and Communications, as well as Progress Reports and Research News.
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