Scalable Nanoimprint Manufacturing of Achromatic Metalenses Based on a High-Refractive-Index and Low-Shrinkage Photoresist
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Scalable Nanoimprint Manufacturing of Achromatic Metalenses Based on a High-Refractive-Index and Low-Shrinkage Photoresist

23/09/2026 TranSpread

Optical metalenses – ultrathin arrays of subwavelength nanostructures – promise to miniaturise imaging systems, but chromatic aberration and the lack of scalable, lowcost fabrication methods have hindered their practical adoption. Conventional electronbeam lithography offers high resolution but suffers from low throughput, while deepultraviolet lithography involves high equipment costs and complex multistep processes. Nanoimprint lithography (NIL) is a promising alternative, yet existing imprint resists often exhibit excessive shrinkage (up to ~20 %) after curing, compromising structural fidelity and optical performance.

In a paper published in Light: Advanced Manufacturing, a research team led by Professors Nan Zhang (Beijing Institute of Technology) and Wanjiao Zhang (University of Chinese Academy of Sciences) reports a scalable NIL route for achromatic metalenses operating across the 480–640 nm band.

The researchers highlight three key contributions of their novel manufacturing approach:

(1) Development of a highrefractiveindex, lowshrinkage photoresist – The team formulated a hybrid photoresist based on an acrylate polymer matrix, incorporating TiO₂ nanoparticles to boost the refractive index, together with silane and methacrylfunctionalised silane as shrinkage inhibitors. These inhibitors strengthen interfacial bonding between the inorganic phase and polymer matrix and tailor the crosslinking network structure. They restrain the movement of polymer segments and facilitate stress release during curing, effectively limiting both lateral and vertical shrinkage to ≤5.19 %. Optical characterisation showed that the resist achieves a refractive index of 1.92–1.97 and transmittance >99 % over the wavelength range of 480–640 nm, with TiO₂ nanoparticles uniformly dispersed (average particle size ~26 nm), well below the minimum feature size, ensuring complete filling during imprinting.

(2) Fast UVcurable working stamp and highefficiency imprint process – Traditional NIL often relies on thermally cured polydimethylsiloxane (PDMS) stamps, which require several hours of curing. In contrast, this work uses a novel UVcurable resin that fully cures in just 3 minutes under a 300 W UV lamp. Combined with an automated imprinter, the entire workingstamp fabrication is completed within 10 minutes. Subsequently, using this stamp on a glass substrate spincoated with the photoresist, the imprinting, exposure, and demoulding steps are finished in another 5 minutes. Thus, the whole process – from stamp to final metalens – can be accomplished in 15 minutes, and the stamp is reusable, providing a solid foundation for lowcost mass production.

(3) Highfidelity fabrication and validated achromatic performance – To quantify manufacturing accuracy, the team systematically measured the dimensions of nanopillars in the master, working stamp, and final imprinted samples using SEM and FIBSEM. Statistical results show that the average shrinkage rates for width, length, and height were only 2.23 %, 1.87 %, and 3.47 %, respectively, with maximum shrinkage not exceeding 5.19 %. This confirms nearperfect structural replication. Benefiting from this high precision, the fabricated metalens was optically tested across 480–640 nm. The measured focal lengths remained highly consistent at different wavelengths, with a maximum deviation <2 %. The focal spot size was close to the diffraction limit. Simulations corrected by introducing the measured dimensional deviations are still in good agreement with experimental data, indicating that the proposed high‑refractive‑index nanoimprint material and metalens fabrication strategy enable precise dimensional control of meta‑atom structures and satisfy the stringent high‑precision fabrication requirements for achromatic metalenses.

"This work provides a practical route for the highprecision, highefficiency, and largescale production of achromatic metalenses," the team concludes. "The demonstrated photoresist and fastcuring stamp materials have substantial application potential in compact imaging, augmented reality displays, and integrated photonics."

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References

DOI

10.37188/lam.2026.105

Original Source URL

https://doi.org/10.37188/lam.2026.105

Funding information

This work was supported by the National Natural Science Foundation of China (Grant No. 62575023).

About Light: Advanced Manufacturing

Light: Advanced Manufacturing LAM is a new, highly selective, open-access, and free of charge international sister journal of the Nature Journal Light: Science & Applications. The journal is aimed to publish innovative research in all modern areas of preferred light-based manufacturing, including fundamental and applied research as well as industrial innovations.

Paper title: Scalable nanoimprint manufacturing of achromatic metalenses based on a high-refractive-index and low-shrinkage photoresist
Fichiers joints
  • Fabrication schematic. Overview of the achromatic metalens and the highprecision, highefficiency, largescale NIL process using the highrefractiveindex, lowshrinkage photoresist and UVcurable working stamp.
  • Material characterisation and metalens design. (a) DLS particle size distribution of TiO2 nanoparticles; (b) refractive index and extinction coefficient; (c) optical transmittance; (d) metaatom unit geometry; (e) top view of the metalens; (f,g) phase and efficiency spectra of metaatoms with different dimensions and rotation angles.
  • SEM and FIB-SEM images of the fabricated metalens (including the master and NIL sample). (a, b) SEM images (top view). (c, d) FIB-SEM images (cross-sectional view).
  • Optical performance. (a) Measurement setup; (b) measured intensity distribution in the x–z plane with focal positions (white dashed); (c) focalplane intensity; (d) cross–section profiles; (e–g) comparison of simulated (original and corrected models) and measured focal lengths, focusing efficiencies, and FWHM across wavelengths.
23/09/2026 TranSpread
Regions: North America, United States, Asia, China
Keywords: Science, Physics

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