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Feng Li

Researcher at Tongji University

Publications -  8
Citations -  363

Feng Li is an academic researcher from Tongji University. The author has contributed to research in topics: Indium & Leaching (metallurgy). The author has an hindex of 5, co-authored 8 publications receiving 218 citations.

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Leaching lithium from the anode electrode materials of spent lithium-ion batteries by hydrochloric acid (HCl)

TL;DR: Based on the analysis result of high amount of lithium contained in the anode electrode, the acid leaching process was applied to recycle lithium from anode electrodes of spent LIBs, and hydrochloric acid was introduced as leaching reagent, and hydrogen peroxide as reducing agent.
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Preparing graphene from anode graphite of spent lithium-ion batteries

TL;DR: In this article, anode graphite was used to prepare graphene by oxidation-reduction method, and the effect of pH and N2H4·H2O amount on reduction of graphite oxide were probed.
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Acetic acid production from the hydrothermal transformation of organics in waste liquid crystal display panels

TL;DR: In this paper, the authors adopted the hydrothermal method to treat waste LCD panels with the aim of recycling waste organics, and the highest yield of acetic acid was 44.91% under the following conditions: a temperature of 300°C, a reaction time of 5min, 3mL of water, and a pH of 10.
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Resource recovery from waste LCD panel by hydrothermal transformation of polarizer into organic acids.

TL;DR: Investigation was done to evaluate the effects of different factors on yields of organic acids, including the reaction temperature, reaction time and H2O2 supply, and the degradation process of polarizer was analyzed, showing that at the condition of temperature 300 °C and reaction time 5 min, the organic materials reached its highest conversion rate.
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Leaching and purification of indium from waste liquid crystal display panel after hydrothermal pretreatment: Optimum conditions determination and kinetic analysis.

TL;DR: Results indicated that the leaching yield of indium reached 100% under the optimal condition of reaction time of 40 min, reaction temperature of 70-80 °C, acid concentration of 0.5 M and solid-liquid (S/L) ratio of 1:2 g/mL.