In a striking reversal of one of ultrafast laser science’s most popular tricks, researchers have shown that a burst of ultraviolet femtosecond pulses can transform a light-swallowing black copper surface back into a comparatively reflective one — and then use that dark-to-bright switch to write working micro-optical components directly onto the metal. The study, published in the open-access journal Results in Optics, systematically documents how 343-nanometer femtosecond laser irradiation restructures, chemically reduces, and optically reprograms chemically blackened copper, opening a route toward planar micro-optics and optical information encoding on broadband-absorbing metallic platforms.
For more than a decade, the dominant paradigm in laser surface engineering has been unidirectional: take a shiny, highly reflective metal and blast it into darkness. By sculpting deep-subwavelength ripples, hierarchical cones, and porous nanostructures into surfaces, researchers have produced remarkable broadband absorbers. In 2025, one team reported a V-scanning strategy that pushed absorption above 99 percent across the 400–700 nanometer window and beyond 98 percent from the ultraviolet all the way to 25 micrometers. Another group achieved uniform blackbodies with absorption over 0.98 in the 3–14 micrometer band using hierarchical cone arrays. But the reverse operation — locally and programmably turning a pre-existing black metal bright again with a laser — had remained largely unexplored, despite its obvious appeal for monolithic device integration.
The research team, led by Mu-Tian Li, Hao Sun, Wei-Wei Xu, and Bing-Rong Gao, began with copper foil chemically etched in a hot alkaline solution containing sodium hydroxide and ammonium persulfate. The treatment grows a dense carpet of copper oxide nanosheets, roughly 30 nanometers thick with lateral dimensions spanning tens to hundreds of nanometers. These randomly arranged, partially overlapping sheets trap light so effectively that the foil loses its metallic luster entirely and appears jet black. It is precisely this metastable oxide architecture that the researchers set out to undo with light.
Their tool was a femtosecond laser system producing 300-femtosecond pulses at a fundamental wavelength of 1030 nanometers, converted to the third harmonic at 343 nanometers through harmonic generation modules. Operating at a fixed repetition rate of 100 kilohertz, the ultraviolet beam was expanded, collimated, steered by a galvanometer scanner, and focused through a 0.5 numerical aperture objective onto the sample in ambient air. The team systematically varied average power from 4 to 40 milliwatts, corresponding to single-pulse energies of 0.04 to 0.40 microjoules and peak fluences of 36 to 362 millijoules per square centimeter, to map out how the surface responds across three distinct regimes.
At low powers of 4 to 12 milliwatts, most nanosheets survived intact; scanning electron microscopy revealed only minor curling, bending, and localized fusion of individual ultrathin sheets, indicating the deposited energy barely exceeded the modification threshold. In the moderate regime of 16 to 28 milliwatts, the transformation became dramatic: the delicate lamellar sheets lost their single-layer character and merged into thicker, plate-like structures roughly 180 nanometers thick, densifying the surface and leaving clearly discernible scan traces. At the highest powers of 32 to 40 milliwatts, overprocessing took over, with vigorous ablation producing irregular debris, recrystallized particles, and highly roughened regions that destroyed most of the original nanosheet architecture.
The processed linewidths, ranging from about 500 to 1200 nanometers, tell an elegant story about Gaussian beam physics. The calculated focal spot diameter is approximately 0.84 micrometers, yet the minimum processed line came in at roughly 500 nanometers — smaller than the spot itself. The explanation lies in thresholding: at low fluence, only the central core of the Gaussian intensity distribution exceeds the modification threshold, so the effective processed width shrinks below the nominal beam diameter. As power rises, a wider annulus of the beam crosses the threshold and the line widens accordingly. Notably, even at elevated power the vertical reach of the process remained limited — the oxide layer was never completely removed, and residual nanolayers persisted within treated zones, a constraint the authors identify as a critical manufacturing limitation: lateral patterning is readily achievable, but vertical depth control is not.
The chemistry behind the brightness change was pinned down by X-ray photoelectron spectroscopy. The pristine black surface was pure divalent CuO, confirmed by Cu 2p peaks at 933.8 and 953.8 electronvolts accompanied by strong shake-up satellites near 942 and 962 electronvolts that arise from the open 3d9 shell of Cu2+. After laser exposure, a pronounced valence transition appeared: low-valence Cu+ states emerged at 932.4 and 951.8 electronvolts, together accounting for 39.72 percent of the copper signal, while the shake-up satellite intensity collapsed to 13.98 percent. The physical driver is photon energy arithmetic — a 343-nanometer photon carries 3.62 electronvolts, comfortably above the roughly 3.04-electronvolt dissociation energy of the CuO bond, so single-photon absorption can cleave the bond and drive oxygen out, first reducing CuO toward Cu2O and, under continued irradiation, potentially toward metallic copper. Energy-dispersive X-ray spectroscopy confirmed the picture, showing copper signals rising and oxygen signals falling along the laser tracks, though roughly 28 percent residual oxygen remained, attributed to incomplete reduction at track peripheries and rapid native re-oxidation in ambient air.
The optical payoff was quantified with an integrating-sphere spectrophotometer across 300 to 2200 nanometers. In the visible band from 350 to 750 nanometers, diffuse reflectance climbed from approximately 4.2 to 4.8 percent on untreated black copper to roughly 7.5 to 8.5 percent after treatment — an approximately 80 percent relative increase based on representative values of 4.5 and 8.0 percent. The authors are careful to note what this does and does not mean: the measurement captures an altered diffuse-reflectance response arising from remodeled morphology and changed composition, but it does not separately quantify enhanced specular reflection versus reduced light trapping, and it cannot by itself predict focusing performance. Under an optical microscope, however, the contrast was unmistakable — laser-written lines and ring patterns glowed visibly brighter against the surrounding darkness.
To prove the concept has device potential, the team direct-wrote amplitude-type reflective Fresnel zone plates onto the black copper, producing clean concentric ring patterns whose circular geometry was well preserved despite slight edge roughness from localized remelting. When observed at different planes along the optical axis, the patterned surface produced a localized bright spot — qualitative evidence of light convergence. The researchers again frame the result cautiously: an ideal binary amplitude Fresnel zone plate would achieve a first-order focusing efficiency of about 10.1 percent under scalar diffraction theory, but finite coherent reflectance, non-ideal amplitude contrast, scattering, and zone-boundary irregularities all conspire to reduce real performance, and no calibrated absolute efficiency was reported. Even so, the demonstration establishes feasibility for in-situ writing of micro-optical components on light-absorbing metallic substrates, and the authors point to clear technological pathways — multi-pulse threshold optimization, processing under inert atmosphere, and auxiliary surface smoothing — for pushing integrated planar micro-optics and laser-based optical encoding toward practical, high-contrast devices.
Subject of Research: Ultrafast laser-induced photoreduction of black copper oxide surfaces for direct-write micro-optics
Article Title: Ultrafast laser-induced photo-reduction on black copper
Article References: Li, M.-T., Sun, H., Chen, Z.-H., Zhuang, R.-J., Huang, W.-W., Hua, J.-G., Shang, P., Xu, W.-W., & Gao, B.-R. (2026). Ultrafast laser-induced photo-reduction on black copper. Results in Optics, Article 101175. https://doi.org/10.1016/j.rio.2026.101175
Image Credits: AI Generated
DOI: 10.1016/j.rio.2026.101175
Keywords: femtosecond laser, black copper, photoreduction, copper oxide, CuO, X-ray photoelectron spectroscopy, Fresnel zone plate, micro-optics, diffuse reflectance, laser surface processing, nanosheets, ultrafast photonics
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Denise Maddox. (October 2, 2026). Femtosecond Laser Turns Black Copper Bright, Writing Micro-Optics Directly. Scienmag. https://scienmag.com/femtosecond-laser-turns-black-copper-bright-writing-micro-optics-directly/
Denise Maddox. “Femtosecond Laser Turns Black Copper Bright, Writing Micro-Optics Directly.” Scienmag, 2 October 2026, https://scienmag.com/femtosecond-laser-turns-black-copper-bright-writing-micro-optics-directly/. Accessed 2 October 2026.
Denise Maddox. “Femtosecond Laser Turns Black Copper Bright, Writing Micro-Optics Directly.” Scienmag. October 2, 2026. https://scienmag.com/femtosecond-laser-turns-black-copper-bright-writing-micro-optics-directly/
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Tags: black copperblack copper surface reversionbroadband metallic absorberschemical reduction of coppercopper oxideCuOdiffuse reflectancedirect writing of micro-opticsfemtosecond laserFresnel zone platelaser surface engineeringlaser surface processinglaser-induced surface restructuringmicro-optical component fabricationmicro-opticsnano- and micro-structuring of metalsnanosheetsoptical reprogramming of metalsphotoreductionultrafast laser surface modificationultrafast photonicsultraviolet femtosecond laser irradiationX-ray photoelectron spectroscopy


