Improving photosynthesis by scattering hydrogel fiber–enabled volumetric illumination

Y Yijie Cheng (Department of Chemical Engineering and Materials Science, Michigan State University) M Mohamed A. Elhabet (Department of Mechanical Engineering, Michigan State University) A Akhiri Zannat (Department of Chemical Engineering and Materials Science, Michigan State University) L Lenan Zhang (Sibley School of Mechanical and Aerospace Engineering, Cornell University) X Xuanjie Wang (Department of Mechanical Engineering, Massachusetts Institute of Technology) Y Yuchen Bian (Department of Plant Biology, Michigan State University) S Siyuan Rao (Department of Biomedical Engineering, State University of New York at Binghamton) Y Yan Liu W Wei Liao (Department of Biosystems and Agricultural Engineering, Michigan State University) Y Yoichiro Tsurimaki (Department of Mechanical Engineering, Michigan State University) X Xinyue Liu

Abstract

Photosynthetic biomanufacturing offers a sustainable route to generate valuable bioproducts by harnessing microorganisms such as algae to convert sunlight and carbon dioxide into biomass. A major barrier to efficient production is that light penetrates poorly into dense algal cultures, restricting photosynthesis to a thin surface layer and severely limiting the solar energy that can be utilized for algal growth and biomass production. Here, we present a material-based strategy to overcome this fundamental bottleneck by deploying bulk-scattering, index-matched optical fibers that redistribute sunlight uniformly throughout the culture volume. These fibers are made from amorphous hydrogels with a refractive index closely matched to that of algal media and contain scattering nanoparticles that redirect light to achieve volumetric illumination. When integrated into solar-powered algal systems, the fibers enable dense and sustained algal growth at 0.8 to 1.4 g L −1 over 2 mo of semicontinuous outdoor cultivation, resulting in volumetric biomass productivity of 0.15 g L −1 day −1 and photosynthetic efficiency of 1.4%, significantly higher compared to algal systems without fibers. This study demonstrates the transformative potential of optical modulation to the long-standing low productivity in dense algal culture, providing a scalable, sustainable, and efficient pathway for solar-driven biomanufacturing.

Article Details

Volume / Issue Vol. 123, Issue 17
Published April 28, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (11)

Y

Yijie Cheng

Department of Chemical Engineering and Materials Science, Michigan State University

M

Mohamed A. Elhabet

Department of Mechanical Engineering, Michigan State University

A

Akhiri Zannat

Department of Chemical Engineering and Materials Science, Michigan State University

L

Lenan Zhang

Sibley School of Mechanical and Aerospace Engineering, Cornell University

X

Xuanjie Wang

Department of Mechanical Engineering, Massachusetts Institute of Technology

Y

Yuchen Bian

Department of Plant Biology, Michigan State University

S

Siyuan Rao

Department of Biomedical Engineering, State University of New York at Binghamton

Y

Yan Liu

W

Wei Liao

Department of Biosystems and Agricultural Engineering, Michigan State University

Y

Yoichiro Tsurimaki

Department of Mechanical Engineering, Michigan State University

X

Xinyue Liu