Gallegos-Moncayo Kevyn, Folastre Nicolas, Toledo Milan, Tonnoir Hélène, Rabuel François, Gachot Grégory, Huo Da, Demortière Arnaud
Laboratoire de Réactivité et Chimie des Solides (LRCS), CNRS UMR 7314, UPJV, Hub de l'Energie, 15 rue Baudelocque, Amiens, Cedex, 80039, France.
Réseau sur le Stockage Electrochimique de l'Energie (RS2E), CNRS FR 3459, Hub de l'Energie, 15 Rue Baudelocque, Amiens, Cedex, 80039, France.
Small Methods. 2024 Dec;8(12):e2400365. doi: 10.1002/smtd.202400365. Epub 2024 Aug 29.
A novel approach for investigating the formation of solid electrolyte interphase (SEI) in Na-ion batteries (NIB) through the coupling of in situ liquid electrochemical transmission electron microscopy (ec-TEM) and gas-chromatography mass-spectrometry (GC/MS) is proposed. To optimize this coupling, experiments are conducted on the sodiation of hard carbon materials (HC) using two setups: in situ ec-TEM holder and ex situ setup. Electrolyte (NP30) is intentionally degraded using cyclic voltammetry (CV), and the recovered liquid product is analyzed using GC/MS. Solid product (µ-chip) is analyzed using TEM techniques in a post-mortem analysis. The ex situ experiments served as a reference to for insertion of Na+ ions in the HC, SEI size (389 nm), SEI composition (P, Na, F, and O), and Na plating. The in situ TEM analysis reveals a cyclability limitation, this issue appears to be caused by the plating of Na in the form of a "foam" structure, resulting from the gas release during the reaction of Na with DMC/EC electrolyte. The foam structure, subsequently transformes into a second SEI, is electrochemically inactive and reduces the cyclability of the battery. Overall, the results demonstrate the powerful synergy achieved by coupling in situ ec-TEM and GC/MS techniques.
提出了一种通过原位液体电化学透射电子显微镜(ec-TEM)与气相色谱-质谱联用(GC/MS)来研究钠离子电池(NIB)中固体电解质界面(SEI)形成的新方法。为了优化这种联用,使用两种装置对硬碳材料(HC)的钠化过程进行了实验:原位ec-TEM支架和非原位装置。使用循环伏安法(CV)有意使电解质(NP30)降解,并使用GC/MS分析回收的液体产物。在事后分析中使用TEM技术分析固体产物(微芯片)。非原位实验作为参考,用于研究HC中Na+离子的插入、SEI尺寸(389 nm)、SEI组成(P、Na、F和O)以及Na镀层。原位TEM分析揭示了循环性能的限制,这个问题似乎是由Na以“泡沫”结构形式镀覆引起的,这是由于Na与DMC/EC电解质反应过程中的气体释放所致。这种泡沫结构随后转变为第二种SEI,它是电化学惰性的,并降低了电池的循环性能。总体而言,结果证明了原位ec-TEM和GC/MS技术联用所实现的强大协同作用。