Optimising Thermochemical Energy Storage: A Comprehensive Analysis of CaCO3 composites with CaSiO3, CaTiO3, and CaZrO3

IF 2.9 3区 化学 Q3 CHEMISTRY, PHYSICAL Physical Chemistry Chemical Physics Pub Date : 2024-07-04 DOI:10.1039/d4cp01144a
Terry D Humphries, Adriana Pires Vieira, Yurong Liu, Eleanor McCabe, Mark Paskevicius, Craig Buckley
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Abstract

With the increasing amount of renewable energy produced, many governments and industries are pushing for the installation of battery energy storage system (BESS) solutions. Thermal batteries are systems that store heat made from various energy sources, and can be used to produce electricity upon demand. These systems are easily scalable and can be installed in cities, homes and remote locations. Thermochemical energy storage (TCES) uses the enthalpy of a chemical reaction to store and release heat through endothermic and exothermic processes, respectively. CaCO3 has been identified as an ideal TCES material as it is cheap and abundant, but maximising long-term cyclability is key to ensure battery longevity. This article investigates the addition of CaSiO3, CaTiO3 and CaZrO3 to CaCO3 in a 1:1 ratio to ascertain the reaction properties and cyclic capacity over time. Cycling longevity and thermodynamic properties were determined using simultaneous differential scanning calorimetry and thermogravimetric analysis (DSC-TGA) along with the Sieverts technique, and their reaction pathway studied by powder X-ray diffraction (XRD) and scanning electron microscopy (SEM). The low cost of the CaCO3-CaSiO3 material of $1.8 USD/kWhth suggests that if a suitable particle refinement agent were to be employed to ensure cycling longevity this material would be an excellent TCES material. Despite the CO2 cycling capacity of the CaCO3-CaZrO3 system only reducing by 16 wt.% over 100 cycles, the cost of ZrO2 brings the materials cost to $30.9 USD/kWhth, making this material currently unsuitable for application. The CaCO3-CaTiO3 system showed only a 17 % drop in total CO2 uptake over 100 cycles, although the cost was $11.1 USD/kWhth.
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优化热化学储能:CaCO3 与 CaSiO3、CaTiO3 和 CaZrO3 复合材料的综合分析
随着可再生能源产量的不断增加,许多政府和行业都在推动安装电池储能系统(BESS)解决方案。热能电池是一种系统,可储存各种能源产生的热量,并在需要时用于发电。这些系统易于扩展,可以安装在城市、家庭和偏远地区。热化学储能(TCES)利用化学反应的热焓,通过内热和放热过程分别储存和释放热量。CaCO3 因其廉价和丰富而被认为是理想的 TCES 材料,但最大限度地提高长期循环性是确保电池寿命的关键。本文研究了在 CaCO3 中以 1:1 的比例添加 CaSiO3、CaTiO3 和 CaZrO3,以确定反应特性和长期循环容量。使用同步差示扫描量热法和热重分析法(DSC-TGA)以及西弗茨技术测定了循环寿命和热力学性质,并通过粉末 X 射线衍射(XRD)和扫描电子显微镜(SEM)研究了它们的反应路径。CaCO3-CaSiO3 材料的成本较低,仅为 1.8 美元/千瓦时,这表明如果使用合适的颗粒精制剂来确保循环寿命,这种材料将成为一种出色的 TCES 材料。尽管 CaCO3-CaZrO3 系统的二氧化碳循环能力在 100 次循环中仅降低了 16 wt.%,但 ZrO2 的成本使材料成本达到 30.9 美元/kWhth,因此这种材料目前不适合应用。CaCO3-CaTiO3 系统在 100 次循环过程中的二氧化碳总吸收量仅下降了 17%,但成本为 11.1 美元/千瓦时。
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来源期刊
Physical Chemistry Chemical Physics
Physical Chemistry Chemical Physics 化学-物理:原子、分子和化学物理
CiteScore
5.50
自引率
9.10%
发文量
2675
审稿时长
2.0 months
期刊介绍: Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.
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