4.6 Article

Perspectives on Potential Applications of Nanometal Derivatives in Gaseous Bioenergy Pathways: Mechanisms, Life Cycle, and Toxicity

Journal

ACS SUSTAINABLE CHEMISTRY & ENGINEERING
Volume 9, Issue 29, Pages 9563-9589

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssuschemeng.1c02260

Keywords

Nanoparticle; Direct interspecies electron transfer (DIET); Metal corrosion; Dissimilatory metal reduction; Toxicity; Lifecycle assessment

Funding

  1. Japan Society for the Promotion of Science (JSPS)
  2. [19F19055]

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This article delves into the mechanisms of nanosized metal derivatives (NMDs) impacting the production of methane (CH4) and hydrogen (H-2) in anaerobic digestion (AD) and dark fermentation (DF) processes, exploring effects on extracellular electron transfer, biotic-biotic interactions such as direct interspecies electron transfer (DIET), and biotic-abiotic exchanges mediated by redox reactions with metals.
Nanosized metal derivatives (NMDs), referring to metals and their oxides, are extensively utilized as additives for anaerobic digestion (AD) and dark fermentation (DF) processes, for enhancing the production of methane (CH4) and hydrogen (H-2), respectively. NMDs-derived positive impacts were widely confirmed in many previous studies; however, no consensus exists about how these have been acquired. Undoubtedly, NMDs affect extracellular electron transfer (EET). Consequently, we explore how biotic-biotic interactions, referring to direct interspecies electron transfer (DIET) among AD partners, and biotic-abiotic exchanges, which are mediated by redox reactions with metals, are affected. In this perspective, the mechanisms behind all those effects are reviewed and explained in detail, considering the specific properties of each NMD, e.g., size and type. We discuss previous studies that offer contradicting interpretations about which process dominates metal oxidation, metal reduction, or DIET. In addition, the fate of NMDs residues in the digestate after the treatment process is discussed, focusing on NMDs toxicity. From previous literature, the environmental impacts are evaluated for the production process of NMDs that are utilized in AD and DF processes via life-cycle assessment. This review provides a comprehensive understanding of NMDs-microbes interactions, which are mandatory for (i) building clear scientific knowledge about processes in play and (ii) engineering favorable conditions to achieve optimum yields in AD and DF processes.

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