sustainable production of fuels and chemicals

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Figure 7.5: Upcycling of waste algal biomass from bioreactors for value creation in the circular economy. low volume components to support the business case for affordable production of, for instance, jet fuel from the photobiological production stages discussed in previous sections. 7.4 Specific research goals Some specific goals related to the future research needs discussed above are provided below. 7.4.1 Rational design of modular biological and bioinspired catalysts for direct energy conversion 1-year goals: • Specification of target materials and device architectures in terms of FRs and DPs following the function-based engineering approach of Figure 7.3. At this early design stage techno- economic requirements to satisfy the FR of public willingness to act might include: • Use of earth-abundant elements for cost-effectiveness and possible global upscaling • Low metal content in active sites (only a small fraction of metal atoms in nanoparticle cata- lysts are surface-exposed and thus catalytically active) • High selectivity and efficient energy conversion • Operation under ambient temperatures and pressures in aqueous media, thus reducing the environmental impact of manufacturing (i.e. green, safe processing) 5-year goals: • Developing mechanistic insight into the function-based biological designs of active sites of metalloenzymes (e.g. developing the DPs associated with the FRs of electron transfer, proton transfer, and catalysis in hydrogenases, dehydrogenases, nitrogenases, laccases, etc.) for the function-based engineering of characteristic proof of concept, modular catalysts for multi- electron/multi-proton reactions (e.g. activation of electron and proton transfer from water, or into CO2, O2, and N2) 75

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