TY - JOUR
T1 - Dehydration-induced CN- defects enable adaptive water regulation in Prussian blue cathodes for high-performance sodium-ion batteries
AU - Chen, Hangda
AU - Jiang, Huailing
AU - Wang, Xuan
AU - Ouyang, Chuying
AU - Che, Haiying
AU - Mei, Yu
AU - Ishaq, Muhammad
AU - Luo, Pengsen
AU - Zhang, Yunlong
AU - Ma, Zi Feng
N1 - Publisher Copyright:
© The Author(s) 2026.
PY - 2026/12
Y1 - 2026/12
N2 - Prussian blue analogues have emerged as a promising cathode material owing to their open‑framework structure and high theoretical capacities; however, the presence and dynamic evolution of crystalline water severely constrain their electrochemical performance. Despite extensive studies, a systematic understanding of dehydration-induced structural reconstruction and the role of water during electrochemical cycling remains elusive. Herein, we elucidate the structural evolution and water-regulated electrochemical behavior of Prussian blue (PB) through controlled dehydration-rehydration process. It is found that dehydration irreversibly triggers the fractures of the one-dimensional C ≡ N framework, forming novel crystal defects, that give rise to defect-associated water with lower binding energy. Density functional theory calculations corroborate the weakened water-framework interactions and reveal defect-mediated energetics. Upon rehydration, the optimized PB‑3 exhibits adaptive dehydration behavior during electrochemical cycling, in which defect-associated water is preferentially extracted upon charging, while coordinated and interstitial water persist as structural pillars, enabling high reversible capacity and long-term cycling stability. By precisely tuning the rehydration degree, PB‑3(H/L) achieves excellent long‑cycle life and rate performance. This work uncovers the mechanistic origin of dehydration-induced CN− defect formation and establishes adaptive water regulation as a governing principle for achieving high-capacity and high-stability Prussian blue cathodes.
AB - Prussian blue analogues have emerged as a promising cathode material owing to their open‑framework structure and high theoretical capacities; however, the presence and dynamic evolution of crystalline water severely constrain their electrochemical performance. Despite extensive studies, a systematic understanding of dehydration-induced structural reconstruction and the role of water during electrochemical cycling remains elusive. Herein, we elucidate the structural evolution and water-regulated electrochemical behavior of Prussian blue (PB) through controlled dehydration-rehydration process. It is found that dehydration irreversibly triggers the fractures of the one-dimensional C ≡ N framework, forming novel crystal defects, that give rise to defect-associated water with lower binding energy. Density functional theory calculations corroborate the weakened water-framework interactions and reveal defect-mediated energetics. Upon rehydration, the optimized PB‑3 exhibits adaptive dehydration behavior during electrochemical cycling, in which defect-associated water is preferentially extracted upon charging, while coordinated and interstitial water persist as structural pillars, enabling high reversible capacity and long-term cycling stability. By precisely tuning the rehydration degree, PB‑3(H/L) achieves excellent long‑cycle life and rate performance. This work uncovers the mechanistic origin of dehydration-induced CN− defect formation and establishes adaptive water regulation as a governing principle for achieving high-capacity and high-stability Prussian blue cathodes.
KW - Adaptive dehydration
KW - Crystal water regulation
KW - Dehydration-rehydration
KW - Prussian blue analogues
KW - Sodium-ion batteries
KW - Structural defects
UR - https://www.scopus.com/pages/publications/105046885727
U2 - 10.1007/s43979-026-00180-z
DO - 10.1007/s43979-026-00180-z
M3 - Article
AN - SCOPUS:105046885727
SN - 2788-8614
VL - 5
JO - Carbon Neutrality
JF - Carbon Neutrality
IS - 1
M1 - 26
ER -