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Enhancing Hydrogen Production from Bioenergy Crops via Photoreforming

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posted on 2025-07-04, 10:26 authored by Lan LanLan Lan, Meshal Aljohani, Helen DalyHelen Daly, Pedro Verdia Barbara, Min Hu, Suhaib Nisar, Shengzhe DingShengzhe Ding, Jason Hallett, Neil Watkins, William Macalpine, Rebecca Rowe, Agnieszka Brandt-TalbotAgnieszka Brandt-Talbot, Gregg Sanford, John Ralph, Shawn Mansfield, Carmine D'agostino, Xiaolei FanXiaolei Fan, Christopher HardacreChristopher Hardacre
<p dir="ltr">Photoreforming of perennial bioenergy crops (willow, miscanthus, and poplar) has the potential to generate H<sub>2</sub> with reduced environmental impacts. To understand the compositional effects of the biomass on the average rate of H2 production over the first 30 min of reaction (<i>r</i>H<sub>2</sub>), the <i>r</i>H<sub>2</sub> of model biomass component (i.e., cellulose, hemicellulose, and lignin) mixtures were compared with those from the raw biomass. The higher cellulose or hemicellulose content in multi-component mixtures resulted in higher<i> </i><i>r</i>H<sub>2</sub>, whereas lignin reduced hydrogen production rate. However, with raw biomass, the ratio of biomass components alone did not determine the <i>r</i>H<sub>2</sub> via photoreforming with rates of hydrogen production for different varieties of willow ranging between 1.9 µmol h<sup>−1</sup> and 12.3 µmol h<sup>−1</sup>, 11.8 µmol h<sup>−1</sup> for a poplar, and 6.8 µmol h<sup>−1</sup> for a miscanthus biomass. In addition, comparable<i> </i><i>r</i>H<sub>2</sub> of raw poplar and its extracted cellulose via an IonoSolv treatment indicated the possibility of using raw biomass materials without delignification for generating H<sub>2</sub> via photoreforming. Importantly, the <i>r</i>H<sub>2</sub> was positively correlated with the interaction between water and the biomass, as assessed by NMR relaxometry via an examination of the T<sub>1</sub>/T<sub>2</sub> ratio. A stronger water-biomass interaction resulted in a higher <i>r</i>H<sub>2</sub>. Genetic modification of biomass has been suggested as a putative way to improve the <i>r</i>H<sub>2</sub><sub> </sub>of biomass with an enhanced interaction with water. This research enhances the understanding of factors influencing H<sub>2</sub> production from lignocellulosic biomass by photoreforming and supports the breeding and management of perennial biomass crops to maximise H<sub>2</sub><sub> </sub>yields while minimising land area requirements.</p>

Funding

Supergen Bioenergy Hub 2018

Engineering and Physical Sciences Research Council

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EP/R026939/1

The UK Catalysis Hub - 'Science': 1 - Optimising, predicting and designing new Catalysts

Engineering and Physical Sciences Research Council

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The UK Catalysis Hub - 'Science': 2 Catalysis at the Water-Energy Nexus

Engineering and Physical Sciences Research Council

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EP/R027129/1

Great Lakes Bioenergy Research Center

Office of Biological and Environmental Research

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