To enhance the safety, cost, and energy density of Li-ion batteries, significant research efforts have been devoted to the search for new positive electrode materials that exhibit high redox potentials and are composed of low-cost, earth-abundant elements. Sulfate chemistry has yielded promising results for iron-based polyanionic electrode materials using the Fe III+ /Fe II+ redox couple, including the recent discovery of a monoclinic marinite Li 2 Fe(SO 4 ) 2 phase (3.83 V vs Li + /Li 0 ). Here, we report the ball-milling synthesis and electrochemical properties of a new orthorhombic polymorph of Li 2 Fe(SO 4 ) 2, which reversibly reacts with lithium through a two-step redox process (3.73 and 3.85 V vs Li + /Li 0 ) with an overall sustained capacity of about 90 mAh/g. Using similar synthesis conditions, the cobalt-, zinc-, magnesium-, and nickel-based orthorhombic analogues were also obtained, though no electrochemical activity was observed for these phases. Overall, our results demonstrate that polymorphism can play a crucial role in the search for new battery electrode materials and emphasize the need to understand and master synthetic control.
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Lander et al. (2014) studied this question.
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