Frontiers of 3D and 4D Printing in Analytical Chemistry: From Device Fabrication to Practical Implementation

Saurabh Shukla, Shweta Mevada · Wiley · 2026

3D and 4D printing technologies are revolutionizing analytical chemistry by enabling innovative, customizable, and adaptive devices.

High AI ConfidenceStrong SourceConceptEarly Research

Plain English summary

This review explores how 3D and 4D printing technologies are changing analytical chemistry. It highlights the use of adaptive materials that respond to stimuli, enhancing the functionality of devices used in various applications like environmental monitoring and clinical diagnostics. The paper also discusses the challenges of standardization and stability in these materials.

Why this matters

The integration of 3D and 4D printing in analytical chemistry can lead to more efficient and customizable devices, which are crucial for fields like healthcare and environmental monitoring. This research addresses the need for innovative solutions that can adapt to various analytical tasks, potentially improving outcomes in diagnostics and quality assurance.

Key findings

  • 3D printing enables rapid prototyping of analytical devices.
  • 4D printing allows for dynamic modulation of device functionality.
  • Integration with major analytical techniques enhances device capabilities.
  • Challenges include standardization and regulatory compliance.
  • Emerging trends involve AI and machine learning to improve performance.

What's new

The review emphasizes the transformative potential of integrating 4D printing with analytical chemistry, particularly through the use of adaptive materials.

Limitations

Challenges in standardization, regulatory compliance, scalability, and long-term stability of adaptive materials are acknowledged.

Commercial context

The abstract indicates ongoing challenges that need to be addressed before commercial viability can be achieved.

Publication

Publisher
Wiley
Publication date
May 1, 2026
Research type
Paper
License
http://onlinelibrary.wiley.com/termsAndConditions#vor

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Method note: Summaries and ratings on this page are generated by AI from the abstract only. Read the original paper for full context. · Model: gpt-4o-mini-2024-07-18