Miguel Granados-Moreno, Rosalía Cid, Maria Arnaiz, Juan Luis Gómez-Urbano, Andrea Balducci, Eider Goikolea, Jon Ajuria
{"title":"方酸锂:改变游戏规则的牺牲盐,用于非SEI 形成电解质中的预硫化和界面稳定","authors":"Miguel Granados-Moreno, Rosalía Cid, Maria Arnaiz, Juan Luis Gómez-Urbano, Andrea Balducci, Eider Goikolea, Jon Ajuria","doi":"10.1016/j.cej.2025.162277","DOIUrl":null,"url":null,"abstract":"Lithium-ion capacitors (LICs) represent a promising hybrid energy storage technology, merging the high energy density of lithium-ion batteries with the high power density of supercapacitors. However, the absence of lithium in conventional carbon-based LIC electrodes imposes a pre-lithiation step to introduce the Li<sup>+</sup> required to properly form the solid electrolyte interphase (SEI). This work introduces the role of dilithium squarate (Li<sub>2</sub>C<sub>4</sub>O<sub>4</sub>) sacrificial salt as a breakthrough lithium agent integrated in the positive electrode, that together with non-conventional and beyond carbonate based electrolytes facilitates pre-lithiation and stable SEI formation in LICs. The universality of this approach is demonstrated with three electrolytes with chemically distinct solvents: 1 M LiPF<sub>6</sub> in 3-cyanopropionic acid methyl ester (CPAME), ethyl isopropyl sulfone (EiPS), and γ-valerolactone (GVL). The Li<sub>2</sub>C<sub>4</sub>O<sub>4</sub> decomposition, and the release of CO<sub>2</sub> and CO decomposition products, lead to robust SEI formation independent of the solvent chemistry. Electrochemical characterization revealed significant enhancements in cell performance and stability, underscoring its compatibility across diverse solvents. This multifunctional additive simplifies LIC design by eliminating the need for SEI-forming additives, reducing costs. Thus, enabling the integration of advanced electrolytes in lithium-ion capacitors and lithium-ion batteries, achieving enhanced properties that include extended electrochemical stability window, high thermal stability or improved safety and sustainability. These findings establish Li<sub>2</sub>C<sub>4</sub>O<sub>4</sub> as a pivotal enabler for next-generation energy storage technologies.","PeriodicalId":270,"journal":{"name":"Chemical Engineering Journal","volume":"58 1","pages":""},"PeriodicalIF":13.3000,"publicationDate":"2025-04-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Dilithium squarate: A game-changing sacrificial salt for pre-lithiation and interphace stabilization in non-SEI forming electrolytes\",\"authors\":\"Miguel Granados-Moreno, Rosalía Cid, Maria Arnaiz, Juan Luis Gómez-Urbano, Andrea Balducci, Eider Goikolea, Jon Ajuria\",\"doi\":\"10.1016/j.cej.2025.162277\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Lithium-ion capacitors (LICs) represent a promising hybrid energy storage technology, merging the high energy density of lithium-ion batteries with the high power density of supercapacitors. However, the absence of lithium in conventional carbon-based LIC electrodes imposes a pre-lithiation step to introduce the Li<sup>+</sup> required to properly form the solid electrolyte interphase (SEI). This work introduces the role of dilithium squarate (Li<sub>2</sub>C<sub>4</sub>O<sub>4</sub>) sacrificial salt as a breakthrough lithium agent integrated in the positive electrode, that together with non-conventional and beyond carbonate based electrolytes facilitates pre-lithiation and stable SEI formation in LICs. The universality of this approach is demonstrated with three electrolytes with chemically distinct solvents: 1 M LiPF<sub>6</sub> in 3-cyanopropionic acid methyl ester (CPAME), ethyl isopropyl sulfone (EiPS), and γ-valerolactone (GVL). The Li<sub>2</sub>C<sub>4</sub>O<sub>4</sub> decomposition, and the release of CO<sub>2</sub> and CO decomposition products, lead to robust SEI formation independent of the solvent chemistry. Electrochemical characterization revealed significant enhancements in cell performance and stability, underscoring its compatibility across diverse solvents. This multifunctional additive simplifies LIC design by eliminating the need for SEI-forming additives, reducing costs. Thus, enabling the integration of advanced electrolytes in lithium-ion capacitors and lithium-ion batteries, achieving enhanced properties that include extended electrochemical stability window, high thermal stability or improved safety and sustainability. 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Dilithium squarate: A game-changing sacrificial salt for pre-lithiation and interphace stabilization in non-SEI forming electrolytes
Lithium-ion capacitors (LICs) represent a promising hybrid energy storage technology, merging the high energy density of lithium-ion batteries with the high power density of supercapacitors. However, the absence of lithium in conventional carbon-based LIC electrodes imposes a pre-lithiation step to introduce the Li+ required to properly form the solid electrolyte interphase (SEI). This work introduces the role of dilithium squarate (Li2C4O4) sacrificial salt as a breakthrough lithium agent integrated in the positive electrode, that together with non-conventional and beyond carbonate based electrolytes facilitates pre-lithiation and stable SEI formation in LICs. The universality of this approach is demonstrated with three electrolytes with chemically distinct solvents: 1 M LiPF6 in 3-cyanopropionic acid methyl ester (CPAME), ethyl isopropyl sulfone (EiPS), and γ-valerolactone (GVL). The Li2C4O4 decomposition, and the release of CO2 and CO decomposition products, lead to robust SEI formation independent of the solvent chemistry. Electrochemical characterization revealed significant enhancements in cell performance and stability, underscoring its compatibility across diverse solvents. This multifunctional additive simplifies LIC design by eliminating the need for SEI-forming additives, reducing costs. Thus, enabling the integration of advanced electrolytes in lithium-ion capacitors and lithium-ion batteries, achieving enhanced properties that include extended electrochemical stability window, high thermal stability or improved safety and sustainability. These findings establish Li2C4O4 as a pivotal enabler for next-generation energy storage technologies.
期刊介绍:
The Chemical Engineering Journal is an international research journal that invites contributions of original and novel fundamental research. It aims to provide an international platform for presenting original fundamental research, interpretative reviews, and discussions on new developments in chemical engineering. The journal welcomes papers that describe novel theory and its practical application, as well as those that demonstrate the transfer of techniques from other disciplines. It also welcomes reports on carefully conducted experimental work that is soundly interpreted. The main focus of the journal is on original and rigorous research results that have broad significance. The Catalysis section within the Chemical Engineering Journal focuses specifically on Experimental and Theoretical studies in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. These studies have industrial impact on various sectors such as chemicals, energy, materials, foods, healthcare, and environmental protection.