2019
DOI: 10.1002/asia.201901246
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Hollow Zn−Co Based Zeolitic Imidazole Framework as a Robust Heterogeneous Catalyst for Enhanced CO2 Chemical Fixation

Abstract: The efficient chemical conversion of carbon dioxide (CO2) into value‐added fine chemicals is an intriguing but challenging route in sustainable chemistry. Herein, a hollow‐structured bimetallic zeolitic imidazole framework composed of Zn and Co as metal centers (H‐ZnCo‐ZIF) has been successfully prepared via a post‐synthetic strategy based on controllable chemical‐etching of the preformed solid ZnCo‐ZIF in tannic acid. The creation of hollow cavities inside each monocrystalline ZIFs could be achieved without d… Show more

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Cited by 13 publications
(7 citation statements)
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References 76 publications
(124 reference statements)
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“…Comparing with ZIF‐67, TG curves of the etched samples present two weight losses below 500 °C, which can be attributed to the desorption and decomposition of TA based on previously reported reference. [ 16 ] Without regard to TA weight loss, TA‐YS and TA‐Box possess a decomposition temperature similar to that of ZIF‐67, meaning that the etching causes almost no change to the decomposition temperature of framework.…”
Section: Resultsmentioning
confidence: 99%
“…Comparing with ZIF‐67, TG curves of the etched samples present two weight losses below 500 °C, which can be attributed to the desorption and decomposition of TA based on previously reported reference. [ 16 ] Without regard to TA weight loss, TA‐YS and TA‐Box possess a decomposition temperature similar to that of ZIF‐67, meaning that the etching causes almost no change to the decomposition temperature of framework.…”
Section: Resultsmentioning
confidence: 99%
“…[ 350 ] Cocatalysts such as n ‐Bu 4 NBr (TBAB), n ‐Pr 4 NBr, n ‐Pr 4 NBr, and Me 4 NBr showed a carbonate yield of 91%, 68%, 33%, and 6%, respectively, using hollow‐structured Zn–Co‐based ZIF. [ 240 ] The catalytic performance of these cocatalysts can be ordered in the sequence of n Bu 4 N + > n ‐Pr 4 N + > Et 4 N + > Me 4 N + . The high performance of TBAB is due to the low interaction between n Bu 4 N + and Br − .…”
Section: Conversion Of Co2 Via Catalysismentioning
confidence: 99%
“…[231][232][233] Thus, this reaction requires a catalyst (Table 3). There are several ZIF materials including ZIF-8, [234] ZIF-23, [254] ZIF-90, [235,255,256] ZIF-95, [236] ZIF-67, [237,238] bimetallic (Zn,Co) ZIF-67, [239,240,257] Co/ ZIF-8, [241] Fe/ZIF-8, [242] and ZIF-68. [243] Bimetallic (Co,Zn)-ZIF-derived magnetic catalyst was also reported (Table 3).…”
Section: Cycloaddition With Epoxidesmentioning
confidence: 99%
“…There are several ZIFs materials including ZIF-8 [234] , ZIF-23 [235] , ZIF-90 [236][237][238] , ZIF-95 [239] , ZIF-67 [240,241] , bimetallic (Zn, Co) ZIF-67 [242][243][244] , Co/ZIF-8 [245] , Fe/ZIF-8 [246] , and ZIF-68 [247] .…”
Section: 1cycloaddition With Epoxidesmentioning
confidence: 99%
“…The catalytic performance can be improved via the addition of a co-catalyst, e.g., TBAB [279] , or gold (Au) [349] . Co-catalysts such as n-Bu4NBr (TBAB), n-Pr4NBr, n-Pr4NBr, Me4NBr showed a carbonate yields of 91%, 68%, 33%, and 6%, respectively, using hollow-structured Zn−Co based ZIF [244] . The catalytic performance of these co-catalysts can be ordered in the sequence of nBu4N + >n-Pr4N + >Et4N + >Me4N + .…”
Section: Additives Solvent and Co-catalystsmentioning
confidence: 99%