Harnisch Falk, Morejón Micjel Chávez
Department of Environmental Microbiology, UFZ - Helmholtz-Centre for Environmental Research, 04318, Leipzig, Germany E-mail: Falk Harnisch.
Chem Rec. 2021 Sep;21(9):2277-2289. doi: 10.1002/tcr.202100034. Epub 2021 Mar 18.
Worldwide a hydrogen-based economy is on the political agenda. Its centre forms molecular hydrogen (H ) that should serve mainly as energy carrier and fuel. However, currently and foreseeable in the future H is playing its main role as reactant in the chemical industry. Electrolytic generation and storage of H gas is energy demanding and may hardly become economically at the large scale. We argue that in the overall transition towards an economy that is based on biomolecules and CO as carbon feedstock electrochemical hydrogenations and hydrodeoxygenations in aqueous solutions need to be moved in the centre. Departing from the well-known fact that electrochemistry allows creating reactive hydrogen species from water, i. e. hydrogen in statu nascendi (H ), at ambient temperature and pressure we illustrate the existing diversity of reactions based thereon. We focus on examples of model compounds from thermal biomass pretreatment and products from real thermal biomass pretreatment (bio-oil). Consequently, we advocate that electrochemical hydrogenations and hydrodeoxygenations have to be further explored and interweaved into existing process lines.
在全球范围内,氢基经济已被提上政治议程。其核心是分子氢(H₂),它主要应作为能量载体和燃料。然而,目前以及可预见的未来,H₂在化学工业中主要作为反应物发挥作用。氢气的电解生成和储存对能源要求很高,大规模应用在经济上可能难以实现。我们认为,在向基于生物分子和CO₂作为碳原料的经济全面转型过程中,水溶液中的电化学氢化和加氢脱氧反应需要成为核心。基于电化学能够在常温常压下从水中产生活性氢物种(即初生状态的氢,H⁺)这一众所周知的事实,我们阐述了基于此的现有反应多样性。我们重点关注热生物质预处理模型化合物的实例以及实际热生物质预处理产物(生物油)。因此,我们主张必须进一步探索电化学氢化和加氢脱氧反应,并将其融入现有工艺路线。