Multiporous Supramolecular Microspheres for Artificial Photosynthesis

Kai Tao, Bin Xue, Samuel Frere, Inna Slutsky, Yi Cao*, Wei Wang, Ehud Gazit

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

39 Scopus citations

Abstract

Artificial photosynthesis shows a promising potential for sustainable supply of nutritional ingredients. While most studies focus on the assembly of the light-sensitive chromophores to 1-D architectures in an artificial photosynthesis system, other supramolecular morphologies, especially bioinspired ones, which may have more efficient light-harvesting properties, have been far less studied. Here, MCpP-FF, a bioinspired building block fabricated by conjugating porphyrin and diphenylalanine, was designed to self-assemble into nanofibers-based multiporous microspheres. The highly organized aromatic moieties result in extensive excitation red-shifts and notable electron transfer, thus leading to a remarkable attenuated fluorescence decay and broad-spectrum light sensitivity of the microspheres. Moreover, the enhanced photoelectron production and transfer capability of the microspheres are demonstrated, making them ideal candidates for sunlight-sensitive antennas in artificial photosynthesis. These properties induce a high turnover frequency of NADH, which can be used to produce bioproducts in biocatalytic reactions. In addition, the direct electron transfer makes external mediators unnecessary, and the insolubility of the microspheres in water allows their easy retrieval for sustainable applications. Our findings demonstrate an alternative to design new platforms for artificial photosynthesis, as well as a new type of bioinspired, supramolecular multiporous materials.

Original languageEnglish
Pages (from-to)4454-4460
Number of pages7
JournalChemistry of Materials
Volume29
Issue number10
DOIs
StatePublished - 23 May 2017

Funding

FundersFunder number
Israeli National Nanotechnology Initiative the Helmsley Charitable Trust
European Research Council
Horizon 2020
Horizon 2020 Framework Programme694426
European Commission281403

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