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Rational Design of Multinary Metal Chalcogenide Bi0.4Sb1.6Te3 Nanocrystals for Efficient Potassium Storage

Zhang, Longhai (author)
Anhui university
Liu, Jiatu (author)
Lund University,Lunds universitet,MAX IV-laboratoriet,MAX IV Laboratory
Zhai, Yunming (author)
Anhui university
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Zhang, Shilin (author)
University of Adelaide
Wang, Wei (author)
Anhui university
Li, Guanjie (author)
University of Adelaide
Sun, Liang (author)
University of Adelaide
Li, Hongbao (author)
Anhui university
Qi, Shuo (author)
Chen, Shuangqiang (author)
Wang, Rui (author)
Anhui university
Ma, Quanwei (author)
Anhui university
Just, Justus (author)
Lund University,Lunds universitet,MAX IV-laboratoriet,MAX IV Laboratory
Zhang, Chaofeng (author)
Anhui university
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 (creator_code:org_t)
English.
In: Advanced Materials. - 0935-9648.
  • Journal article (peer-reviewed)
Abstract Subject headings
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  • Multinary metal chalcogenides hold considerable promise for high-energy potassium storage due to their numerous redox reactions. However, challenges arise from issues such as volume expansion and sluggish kinetics. Here, a design featuring a layered ternary Bi0.4Sb1.6Te3 anchored on graphene layers as a composite anode, where Bi atoms act as a lattice softening agent on Sb, is presented. Benefiting from the lattice arrangement in Bi0.4Sb1.6Te3 and structure, Bi0.4Sb1.6Te3/graphene exhibits a mitigated expansion of 28% during the potassiation/depotassiation process and demonstrates facile K+ ion transfer kinetics, enabling long-term durability of 500 cycles at various high rates. Operando synchrotron diffraction patterns and spectroscopies including in situ Raman, ex situ adsorption, and X-ray photoelectron reveal multiple conversion and alloying/dealloying reactions for potassium storage at the atomic level. In addition, both theoretical calculations and electrochemical examinations elucidate the K+ migration pathways and indicate a reduction in energy barriers within Bi0.4Sb1.6Te3/graphene, thereby suggesting enhanced diffusion kinetics for K+. These findings provide insight in the design of durable high-energy multinary tellurides for potassium storage.

Subject headings

NATURVETENSKAP  -- Kemi -- Materialkemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Materials Chemistry (hsv//eng)

Keyword

BiSbTe anode
multinary metal chalcogenide
potassium ion batteries
synergetic effect

Publication and Content Type

art (subject category)
ref (subject category)

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