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The good, the neutral, and the positive: buffer identity impacts CO reduction activity by nickel() cyclam
Development of new synthetic catalysts for CO 2 reduction has been a central focus of chemical research efforts towards mitigating rising global carbon dioxide levels. In parallel with generating new molecular systems, characterization and benchmarking of these compounds across well-defined catalyti...
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Published in: | Dalton transactions : an international journal of inorganic chemistry 2019-10, Vol.48 (42), p.1581-15821 |
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container_issue | 42 |
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container_title | Dalton transactions : an international journal of inorganic chemistry |
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creator | Schneider, Camille R Lewis, Luke C Shafaat, Hannah S |
description | Development of new synthetic catalysts for CO
2
reduction has been a central focus of chemical research efforts towards mitigating rising global carbon dioxide levels. In parallel with generating new molecular systems, characterization and benchmarking of these compounds across well-defined catalytic conditions are essential. Nickel(
ii
) cyclam is known to be an active catalyst for CO
2
reduction to CO. The degree of selectivity and activity has been found to differ widely across electrodes used and upon modification of the ligand environment, though without a molecular-level understanding of this variation. Moreover, while proton transfer is key for catalytic activity, the effects of varying the nature of the proton donor remain unclear. In this work, a systematic investigation of the electrochemical and light-driven catalytic behaviour of nickel(
ii
) cyclam under different aqueous reaction conditions has been performed. The activity and selectivity are seen to vary widely depending on the nature of the buffering agent, even at a constant pH, highlighting the importance of proton transfer for catalysis. Buffer binding to the nickel center is negatively correlated with selectivity, and cationic buffers show high levels of selectivity and activity. These results are discussed in the context of molecular design principles for developing increasingly efficient and selective catalysts. Moreover, identifying these key contributors towards activity has implications for understanding the role of the conserved secondary coordination environments in naturally occurring CO
2
-reducing enzymes, including carbon monoxide dehydrogenase and formate dehydrogenase.
Electrocatalytic and light-driven CO
2
reduction by nickel cyclam is strongly dependent on the nature of the buffering agent. |
doi_str_mv | 10.1039/c9dt03114f |
format | article |
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2
reduction has been a central focus of chemical research efforts towards mitigating rising global carbon dioxide levels. In parallel with generating new molecular systems, characterization and benchmarking of these compounds across well-defined catalytic conditions are essential. Nickel(
ii
) cyclam is known to be an active catalyst for CO
2
reduction to CO. The degree of selectivity and activity has been found to differ widely across electrodes used and upon modification of the ligand environment, though without a molecular-level understanding of this variation. Moreover, while proton transfer is key for catalytic activity, the effects of varying the nature of the proton donor remain unclear. In this work, a systematic investigation of the electrochemical and light-driven catalytic behaviour of nickel(
ii
) cyclam under different aqueous reaction conditions has been performed. The activity and selectivity are seen to vary widely depending on the nature of the buffering agent, even at a constant pH, highlighting the importance of proton transfer for catalysis. Buffer binding to the nickel center is negatively correlated with selectivity, and cationic buffers show high levels of selectivity and activity. These results are discussed in the context of molecular design principles for developing increasingly efficient and selective catalysts. Moreover, identifying these key contributors towards activity has implications for understanding the role of the conserved secondary coordination environments in naturally occurring CO
2
-reducing enzymes, including carbon monoxide dehydrogenase and formate dehydrogenase.
Electrocatalytic and light-driven CO
2
reduction by nickel cyclam is strongly dependent on the nature of the buffering agent.</description><identifier>ISSN: 1477-9226</identifier><identifier>EISSN: 1477-9234</identifier><identifier>DOI: 10.1039/c9dt03114f</identifier><ispartof>Dalton transactions : an international journal of inorganic chemistry, 2019-10, Vol.48 (42), p.1581-15821</ispartof><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,780,784,27923,27924</link.rule.ids></links><search><creatorcontrib>Schneider, Camille R</creatorcontrib><creatorcontrib>Lewis, Luke C</creatorcontrib><creatorcontrib>Shafaat, Hannah S</creatorcontrib><title>The good, the neutral, and the positive: buffer identity impacts CO reduction activity by nickel() cyclam</title><title>Dalton transactions : an international journal of inorganic chemistry</title><description>Development of new synthetic catalysts for CO
2
reduction has been a central focus of chemical research efforts towards mitigating rising global carbon dioxide levels. In parallel with generating new molecular systems, characterization and benchmarking of these compounds across well-defined catalytic conditions are essential. Nickel(
ii
) cyclam is known to be an active catalyst for CO
2
reduction to CO. The degree of selectivity and activity has been found to differ widely across electrodes used and upon modification of the ligand environment, though without a molecular-level understanding of this variation. Moreover, while proton transfer is key for catalytic activity, the effects of varying the nature of the proton donor remain unclear. In this work, a systematic investigation of the electrochemical and light-driven catalytic behaviour of nickel(
ii
) cyclam under different aqueous reaction conditions has been performed. The activity and selectivity are seen to vary widely depending on the nature of the buffering agent, even at a constant pH, highlighting the importance of proton transfer for catalysis. Buffer binding to the nickel center is negatively correlated with selectivity, and cationic buffers show high levels of selectivity and activity. These results are discussed in the context of molecular design principles for developing increasingly efficient and selective catalysts. Moreover, identifying these key contributors towards activity has implications for understanding the role of the conserved secondary coordination environments in naturally occurring CO
2
-reducing enzymes, including carbon monoxide dehydrogenase and formate dehydrogenase.
Electrocatalytic and light-driven CO
2
reduction by nickel cyclam is strongly dependent on the nature of the buffering agent.</description><issn>1477-9226</issn><issn>1477-9234</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2019</creationdate><recordtype>article</recordtype><sourceid/><recordid>eNqFjjsLwjAURoMoWB-Lu3BHBR9JWi11FcXNxV1ikurVNi1JKvTf-0B0dPoO5ywfIQNGZ4yGyVwmytOQsShtkIBFcTxNeBg1v8yXbdJx7kop53TBA4KHi4ZzUagJ-CcZXXkrsgkIo96iLBx6vOsVnKo01RZQaePR14B5KaR3sN6D1aqSHgsDT4P3Vz3VYFDedDYag6xlJvIeaaUic7r_2S4ZbjeH9W5qnTyWFnNh6-Pvf_ivPwDqCUlP</recordid><startdate>20191029</startdate><enddate>20191029</enddate><creator>Schneider, Camille R</creator><creator>Lewis, Luke C</creator><creator>Shafaat, Hannah S</creator><scope/></search><sort><creationdate>20191029</creationdate><title>The good, the neutral, and the positive: buffer identity impacts CO reduction activity by nickel() cyclam</title><author>Schneider, Camille R ; Lewis, Luke C ; Shafaat, Hannah S</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-rsc_primary_c9dt03114f3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><creationdate>2019</creationdate><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Schneider, Camille R</creatorcontrib><creatorcontrib>Lewis, Luke C</creatorcontrib><creatorcontrib>Shafaat, Hannah S</creatorcontrib><jtitle>Dalton transactions : an international journal of inorganic chemistry</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Schneider, Camille R</au><au>Lewis, Luke C</au><au>Shafaat, Hannah S</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>The good, the neutral, and the positive: buffer identity impacts CO reduction activity by nickel() cyclam</atitle><jtitle>Dalton transactions : an international journal of inorganic chemistry</jtitle><date>2019-10-29</date><risdate>2019</risdate><volume>48</volume><issue>42</issue><spage>1581</spage><epage>15821</epage><pages>1581-15821</pages><issn>1477-9226</issn><eissn>1477-9234</eissn><abstract>Development of new synthetic catalysts for CO
2
reduction has been a central focus of chemical research efforts towards mitigating rising global carbon dioxide levels. In parallel with generating new molecular systems, characterization and benchmarking of these compounds across well-defined catalytic conditions are essential. Nickel(
ii
) cyclam is known to be an active catalyst for CO
2
reduction to CO. The degree of selectivity and activity has been found to differ widely across electrodes used and upon modification of the ligand environment, though without a molecular-level understanding of this variation. Moreover, while proton transfer is key for catalytic activity, the effects of varying the nature of the proton donor remain unclear. In this work, a systematic investigation of the electrochemical and light-driven catalytic behaviour of nickel(
ii
) cyclam under different aqueous reaction conditions has been performed. The activity and selectivity are seen to vary widely depending on the nature of the buffering agent, even at a constant pH, highlighting the importance of proton transfer for catalysis. Buffer binding to the nickel center is negatively correlated with selectivity, and cationic buffers show high levels of selectivity and activity. These results are discussed in the context of molecular design principles for developing increasingly efficient and selective catalysts. Moreover, identifying these key contributors towards activity has implications for understanding the role of the conserved secondary coordination environments in naturally occurring CO
2
-reducing enzymes, including carbon monoxide dehydrogenase and formate dehydrogenase.
Electrocatalytic and light-driven CO
2
reduction by nickel cyclam is strongly dependent on the nature of the buffering agent.</abstract><doi>10.1039/c9dt03114f</doi><tpages>12</tpages></addata></record> |
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title | The good, the neutral, and the positive: buffer identity impacts CO reduction activity by nickel() cyclam |
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