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January 20, 2026Advanced Materials Technologies0 citationsOpen Access

Titanium Nitride: An Emerging Material in Scalable Biosensors

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ZLZonghui LiXTXiaohui TangJCJiaying Cao

Key Points

  • The review aims to explore titanium nitride's properties and its potential applications in biomedical sensing technologies.
  • Summarizes the fundamental properties of titanium nitride.
  • Discusses its conventional applications in the integrated circuit industry.
  • Introduces titanium nitride's role as a bioelectrode material.
  • Explores strategies for the functional modification of titanium nitride.
  • Covers its potential in new sensing technologies.
  • Titanium nitride exhibits excellent chemical stability and biocompatibility.
  • Its compatibility with CMOS processes makes it suitable for biomedical applications.
  • TiN can efficiently facilitate electron transport in electronic chips.
  • Functional modifications can enhance the performance of TiN for various applications.
  • The material shows promise in frontier sensing technologies.

Abstract

ABSTRACT Titanium nitride (TiN), a widely used material in conventional integrated circuit (IC) fabrication, has drawn rising attention in the field of healthcare, as it possesses excellent chemical stability, biocompatibility, as well as good electrical conductivity. Owing to its strong compatibility with the Complementary Metal‐Oxide‐Semiconductor (CMOS) processes, TiN holds great promise as a key material for scalable and integrated applications in biomedical sensors, implantable devices, and micro/nanoelectronic systems. This review aims to provide a comprehensive overview of TiN and its potential as an emerging material in biomedical sensing chips. First, the fundamental properties of TiN are summarized, followed by a discussion over the conventional application of TiN in the IC industry. Then, the prospects of TiN as a bioelectrode material are introduced, where its excellent biocompatibility and capability to facilitate efficient electron transport in biomedical electronic chips are highlighted. The following section explores functional modification strategies designed to optimize the performance of TiN which broadens its range of applications. Finally, the potential of TiN in frontier sensing technologies is discussed.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/696f1ac19e64f732b51ef145https://doi.org/10.1002/admt.202502242
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