4.5 Review

Nanoscale Construction Biotechnology for Cementitious Materials: A Prospectus

期刊

FRONTIERS IN MATERIALS
卷 7, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fmats.2020.594989

关键词

nanotechnology; heavy metal remediation; Sustainability; cementitious materials; construction biotechnology

资金

  1. Advanced Research Projects Agency-Energy [DE-AR0001145]
  2. Defense Advanced Research Projects Agency [HR0011-17-2-0039]
  3. University of Colorado Boulder Libraries Open Access Fund

向作者/读者索取更多资源

This review discusses the grand challenges faced by civil engineers in the 21st century, such as climate change, infrastructure resilience, and resource recovery from waste, as well as the promising applications of biotechnology in the field.
Climate change, infrastructure resilience, and resource recovery from waste have emerged as grand challenges for civil engineers in the 21st century. Wicked problems associated with these global grand challenges are necessitating innovative, multidisciplinary thinking and multiscale, integrated solutions that are spurring the development of a new field-construction biotechnology. While the field of construction biotechnology spans multiple scales, this review highlights the promise and potential of nanoscale (<100 nm) biotechnological applications to civil engineering. While the field of nanotechnology has revolutionized other industries, applications of nanotechnology in civil engineering have remained limited due to techno-economic and environmental barriers. Biological production of functional nanoparticles (NPs), however, offers new economical routes to develop resilient, high-performance cementitious materials while simultaneously addressing critical needs related to wastewater treatment and resource recovery. Recent research has elucidated that biological production of NPs exhibit preferred-and genetically controllable-morphological characteristics that could tailor the structure-property relationships of civil engineering materials. The natural ability of microorganisms to immobilize heavy metals (eg, Hg, Cr, Zn, Cd, Cu, Ag)-and the programmability of microorganisms to do so via synthetic biology-as well as their ability to sequester greenhouse gases and neutralize volatile organic compounds affords civil engineers a grand opportunity to treat wastewater, recover rare earth elements, and minimize air pollution. In addition to featuring state-of-the-art research in the field, this review summarizes the opportunities and challenges of nanoscale biotechnology and proposes a roadmap of research for civil engineers of the 21st century.

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