4.8 Article

Shifting Target Reaction from Oxygen Reduction to Superoxide Disproportionation by Tuning Isomeric Configuration of Quinone Derivative as Redox Mediator for Lithium-Oxygen Batteries

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 7, Pages 9066-9072

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c22621

Keywords

lithium-oxygen batteries; superoxide disproportionation; redox mediator; superoxide dismutase; catalyst

Funding

  1. Samsung Research Funding and Incubation Center of Samsung Electronics [SRFC-MA180204]
  2. MOTIE [P0002068, 20010282]
  3. NRF, Korea [2021M3D1A2047042, 2020M3H4A3081874]
  4. Korea Evaluation Institute of Industrial Technology (KEIT) [20010282] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)
  5. National Research Foundation of Korea [2021M3D1A2047042] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Quinones with a fully conjugated cyclic dione structure have been used as redox mediators in electrochemistry. Tuning the isomeric configuration of the carbonyl groups of the substituted quinone can change its reduction potentials and facilitate superoxide disproportionation reactions, improving the cycling durability of lithium-oxygen batteries. The ortho isomer of 2,5-Ditert-butyl-1,4-benzoquinone shows electrocatalytic functionality for promoting superoxide disproportionation reaction and oxygen reduction reaction in lithium-oxygen batteries.
Quinones having a fully conjugated cyclic dione structure have been used as redox mediators in electrochemistry. 2,5-Ditert-butyl-1,4-benzoquinone (DBBQ or DB-p-BQ) as a para-quinone derivative is one of the representative discharge redox mediators for facilitating the oxygen reduction reaction (ORR) kinetics in lithium-oxygen batteries (LOBs). Herein, we presented that the redox activity of DB-p-BQ for electron mediation was possibly used for facilitating superoxide disproportionation reaction (SODR) by tuning the isomeric configuration of the carbonyl groups of the substituted quinone to change its reduction potentials. First, we expected a molecule having its reduction potential between oxygen/superoxide at 2.75 V versus Li/Li+ and superoxide/peroxide at 3.17 V to play a role of the SODR catalyst by transferring an electron from one superoxide (O-2(-)) to another superoxide to generate dioxygen (O-2) and peroxide (O-2(2-)). By changing the isomeric configuration from para (DB-p-BQ) to ortho (DB-o-BQ), the reduction potential of the first electron transfer (Q/Q-) of the ditert-butyl benzoquinone shifted positively to the potential range of the SODR catalyst. The electrocatalytic SODR-promoting functionality of DB-o-BQ kept the reactive superoxide concentration below a harmful level to suppress superoxidetriggered side reaction, improving the cycling durability of LOBs, which was not achieved by the para form. The second electron transfer process (Q(-)/Q(2-)) of the DB-o-BQ, even if the same process of the para form was not used for facilitating ORR, played a role of mediating electrons between electrode and oxygen like the Q/Q(-) process of the para form. The ORR-promoting functionality of the ortho form increased the LOB discharge capacity and reduced the ORR overpotential.

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