Diatom biosilica as a supplementary cementitious material

Sarah L. Williams, Danielle N. Beatty, Wil V. Srubar III
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Abstract

The use of supplementary cementitious materials (SCMs) is a key method used to reduce the embodied carbon of cement-based materials. Uncertainty in traditional SCM markets has led to increased interest in alternative, natural SCM materials. In this work, biosilica derived from freshly cultured diatom frustules (grown by Thalassiosira pseudonana and Phaeodactylum tricornutum) was assessed as an alternative SCM for the first time. The chemical reactivity of each biosilica source was assessed using a small-scale version of ASTM C1897 (the R3 test) previously developed by the authors. The chemical reactivity of T. pseudonana frustules was relatively high (i.e., greater than that of blast furnace slag, but lower than that of metakaolin). P. tricornutum frustules exhibited a lower chemical reactivity, similar to a Class F fly ash. Results demonstrate the potential to grow highly reactive biominerals using diatoms and highlight the potential tunability of diatom biosilica for use as a novel, sustainable SCM.

Abstract Image

硅藻生物硅作为补充胶凝材料
使用水泥基辅助材料(SCMs)是减少水泥基材料体现碳含量的关键方法。传统 SCM 市场的不确定性导致人们对替代性天然 SCM 材料的兴趣与日俱增。在这项研究中,我们首次评估了由新鲜培养的硅藻(由 Thalassiosira pseudonana 和 Phaeodactylum tricornutum 生长)产生的生物二氧化硅作为一种替代性 SCM。使用作者之前开发的 ASTM C1897(R3 试验)小规模版本对每种生物硅源的化学反应性进行了评估。T. pseudonana 菌体的化学反应活性相对较高(即高于高炉矿渣,但低于偏高岭土)。三尖杉球菌的挫折表现出较低的化学反应性,类似于 F 级粉煤灰。研究结果表明了利用硅藻培育高活性生物矿物的潜力,并突出了硅藻生物硅石作为新型可持续 SCM 的潜在可调性。
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