Cold sintering of geopolymer powders

IF 3.8 3区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS Journal of the American Ceramic Society Pub Date : 2024-12-23 DOI:10.1111/jace.20331
Lorenzo Lattanzi, Alberto Conte, Augusto Sin, Javier Mena Garcia, Clive A. Randall, Paolo Colombo
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Abstract

Geopolymers (GP) represent a promising class of inorganic materials with diverse applications due to their properties, including high temperature resistance and strong interfacial bonding ability. They are produced through alkali activation of aluminosilicate sources, such as metakaolin or fly ashes. Despite their attractive characteristics, conventional casting methods for GP production often result in prolonged curing times and inferior mechanical properties to OPC or other benchmark materials. In this study, we investigated the feasibility of rapidly densifying GP matrices using cold sintering technology (CSP), a novel approach previously employed in ceramic systems. Through CSP, it was possible to obtain a dense body starting from GP sodium-based powder with optimal moisture content (10% wt.) under mild isostatic pressure (70 MPa) and moderate temperature (150°C) conditions, with a short duration process (10 min). The resulting products exhibited chemical stability (high resistance to boiling test), high density (> 90% theoretical density) and good mechanical properties (flexural strength equal to 30 MPa and compressive strength over 200 MPa) without requiring additional thermal treatments. SEM, EDS and NMR studies indicated that the predominant densification mechanism was likely to be homogeneous dissolutions and precipitation of the material, consistent with pressure solution creep. Dilatometric tests were performed to track the densification process in real-time and to determine the activation energy, which revealed an exceptionally low value for the system (21.7 kJ/mol). Our results demonstrate the potential of CSP as a rapid and efficient method for producing high-quality GP-based components, paving the way for their broader application in various fields.

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地聚合物粉末的冷烧结
地聚合物(GP)由于其耐高温和强界面结合能力等特性,是一类具有广泛应用前景的无机材料。它们是通过铝硅酸盐源(如偏高岭土或粉煤灰)的碱活化生产的。尽管GP具有吸引人的特点,但传统的GP铸造方法往往会导致固化时间延长,机械性能不如OPC或其他基准材料。在这项研究中,我们研究了使用冷烧结技术(CSP)快速致密化GP矩阵的可行性,这是一种以前用于陶瓷系统的新方法。通过CSP,可以在温和的等静压(70 MPa)和中等温度(150°C)条件下,以较短的持续时间(10 min)从GP钠基粉末开始获得最佳含水量(10% wt.)的致密体。所得产物具有化学稳定性高(耐沸点试验)、高密度(>;90%理论密度)和良好的机械性能(抗弯强度等于30兆帕,抗压强度超过200兆帕),无需额外的热处理。SEM, EDS和NMR研究表明,主要的致密化机制可能是材料的均匀溶解和沉淀,与压溶蠕变相一致。通过膨胀测试实时跟踪致密化过程并确定活化能,结果显示该体系的活化能极低(21.7 kJ/mol)。我们的研究结果证明了CSP作为一种快速有效的生产高质量gp基组件的方法的潜力,为其在各个领域的广泛应用铺平了道路。
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来源期刊
Journal of the American Ceramic Society
Journal of the American Ceramic Society 工程技术-材料科学:硅酸盐
CiteScore
7.50
自引率
7.70%
发文量
590
审稿时长
2.1 months
期刊介绍: The Journal of the American Ceramic Society contains records of original research that provide insight into or describe the science of ceramic and glass materials and composites based on ceramics and glasses. These papers include reports on discovery, characterization, and analysis of new inorganic, non-metallic materials; synthesis methods; phase relationships; processing approaches; microstructure-property relationships; and functionalities. Of great interest are works that support understanding founded on fundamental principles using experimental, theoretical, or computational methods or combinations of those approaches. All the published papers must be of enduring value and relevant to the science of ceramics and glasses or composites based on those materials. Papers on fundamental ceramic and glass science are welcome including those in the following areas: Enabling materials for grand challenges[...] Materials design, selection, synthesis and processing methods[...] Characterization of compositions, structures, defects, and properties along with new methods [...] Mechanisms, Theory, Modeling, and Simulation[...] JACerS accepts submissions of full-length Articles reporting original research, in-depth Feature Articles, Reviews of the state-of-the-art with compelling analysis, and Rapid Communications which are short papers with sufficient novelty or impact to justify swift publication.
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