Xuejian Liu, Zhenyuan Yin, Jiayu Sun, Xinrui Cai, Yan Li, G. Chen, Chenlu Xu, Hongfeng Lu, Praveen Linga
Achieving global net-zero emissions necessitates advancements in sustainable CO 2 sequestration technologies. CO 2 sequestration in subsea sediments in the form of clathrates presents a promising option due to inherent reaction conditions, high CO 2 storage capacity, and superior stability. However, the sluggish CO 2 hydrate formation kinetics significantly constrains its field-scale application, particularly in the process of CO 2 hydrate cap formation to prevent the CO 2 leakage. Herein, we propose a biomolecular strategy by using the low-dose hydrophobic amino acid l -methionine to address this challenge. Combining morphological imaging and in situ Raman spectroscopy, l -methionine was found to disrupt the rigid CO 2 hydrate films and induces self-organized liquid CO 2 transport channels, significantly reducing CO 2 mass transfer resistance. Molecular-level analysis further reveals that the hydrophobic group of l -methionine leads to a 70% decrease in the energy barrier of the CO 2 diffusion. This biocompatible promoter enables ultrahigh CO 2 uptake (120.6 v/v ) with a 15-fold enhancement over pure water. Rapid CO 2 hydrate formation for hydrate-sediment cementation was further validated using the acquired South China Sea clayey-silty marine sediments. This environmentally benign strategy demonstrates extraordinary CO 2 hydrate formation kinetics from liquid CO 2 compared to the state-of-the-art promoters, offering a promising and practical solution for long-term offshore CO 2 storage to mitigate climate change.