Jürgen Van Erps

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Professor in Photonics and Optical Communications

Vrije Universiteit Brussel
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Belgium

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Articles (11)

Role of Nanocellulose in Light Harvesting and Artificial Photosynthesis

Artificial photosynthesis has rapidly developed as an actual field of research, mimicking natural photosynthesis processes in plants or bacteria to produce energy or high-value chemicals. The nanocelluloses are a family of biorenewable materials that can be engineered into nanostructures with favorable properties to serve as a host matrix for encapsulation of photoreactive moieties or cells. In this review, the production of different nanocellulose structures such as films, hydrogels, membranes, and foams together with their specific properties to function as photosynthetic devices are described. In particular, the nanocellulose’s water affinity, high surface area and porosity, mechanical stability in aqueous environment, and barrier properties can be tuned by appropriate processing. From a more fundamental viewpoint, the optical properties (transparency and haze) and interaction of light with nanofibrous structures can be further optimized to enhance light harvesting, e.g., by functionalization or appropriate surface texturing. After reviewing the basic principles of natural photosynthesis and photon interactions, it is described how they can be transferred into nanocellulose structures serving as a platform for immobilization of photoreactive moieties. Using photoreactive centers, the isolated reactive protein complexes can be applied in artificial bio-hybrid nanocellulose systems through self-assembly, or metal nanoparticles, metal-organic frameworks, and quantum dots can be integrated in nanocellulose composites. Alternatively, the immobilization of algae or cyanobacteria in nanopaper coatings or a porous nanocellulose matrix allows to design photosynthetic cell factories and advanced artificial leaves. The remaining challenges in upscaling and improving photosynthesis efficiency are finally addressed in order to establish a breakthrough in utilization of nanocellulose for artificial photosynthesis.

Year:

2023

Collaborators (18)

Tatevik Chalyan

Vrije Universiteit Brussel

BELGIUM

Robim Rodrigues

National Institute on Alcohol Abuse and Alcoholism

UNITED STATES

Luise Kranzhoff

University of Maastricht

NETHERLANDS

Francis Berghmans

Vrije Universiteit Brussel

BELGIUM

Aaron Jones

University of Western Australia

AUSTRALIA

Simone Sorgato

Vrije Universiteit Brussel

BELGIUM

Marica Markovic

TU Wien

AUSTRIA

Michael Vervaeke

Vrije Universiteit Brussel

BELGIUM

Teng Zhang

University of Birmingham

UNITED KINGDOM

Andrei Utina

University of Maastricht

NETHERLANDS

Gideon Koekoek

University of Maastricht

NETHERLANDS

Wim De Malsche

Vrije Universiteit Brussel

BELGIUM

Tigran Baghdasaryan

Vrije Universiteit Brussel

BELGIUM

Thomas Geernaert

Vrije Universiteit Brussel

BELGIUM

Sandra Van Vlierberghe

Vrije Universiteit Brussel

BELGIUM

Alexander Sevrin

Vrije Universiteit Brussel

BELGIUM

Lien Smeesters

Vrije Universiteit Brussel

BELGIUM

Nathalie Vermeulen

Vrije Universiteit Brussel

BELGIUM
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