Issue 16, 2024

Temperature modulated sustainable on/off photosynthesis switching of microalgae towards hydrogen evolution

Abstract

Despite great progress in the active interfacing between various abiotic materials and living organisms, the development of a smart polymer matrix with modulated functionality of algae towards the application of green bioenergy is still rare. Herein, we design a thermally sensitive poly(N-isopropylacrylamide)-co-poly(butyl acrylate) with an LCST (ca. 25 °C) as a chassis, which could co-assemble with algal cells based on hydrophobic interaction to generate a new type of robust hybrid hydrogel living material. By modulating the temperature to 30 °C, the volume of the polymer matrix is shrunk by 9 times, which allows the formation of physical shading and metabolism changing of the algae, and then triggers the functionality switching of the algae from photosynthetic oxygen production to hydrogen production. By contrast, by decreasing the temperature to 20 °C, the hybrid living materials go into a sol state where the algae behave normally with photosynthetic oxygen production. In particular, due to the proliferation of the algae in living materials, a long-term and exponential enhancement in the amount of hydrogen produced is achieved. Overall, it is anticipated that our investigations could provide a new paradigm for the development of polymer/living organism-based hybrid living materials with synergistic functionality boosting green biomanufacturing.

Graphical abstract: Temperature modulated sustainable on/off photosynthesis switching of microalgae towards hydrogen evolution

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Article information

Article type
Edge Article
Submitted
08 Jan 2024
Accepted
17 Mar 2024
First published
18 Mar 2024
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY-NC license

Chem. Sci., 2024,15, 6141-6150

Temperature modulated sustainable on/off photosynthesis switching of microalgae towards hydrogen evolution

S. Li, Z. Xu, S. Lin, L. Li, Y. Huang, X. Qiao and X. Huang, Chem. Sci., 2024, 15, 6141 DOI: 10.1039/D4SC00128A

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