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Dive into the research topics where Robert J. Comito is active.

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Featured researches published by Robert J. Comito.


Applied Categorical Structures | 2016

Selective Dimerization of Ethylene to 1-Butene with a Porous Catalyst

Eric D. Metzger; Carl K. Brozek; Robert J. Comito; Mircea Dinca

Current heterogeneous catalysts lack the fine steric and electronic tuning required for catalyzing the selective dimerization of ethylene to 1-butene, which remains one of the largest industrial processes still catalyzed by homogeneous catalysts. Here, we report that a metal–organic framework catalyzes ethylene dimerization with a combination of activity and selectivity for 1-butene that is premier among heterogeneous catalysts. The capacity for mild cation exchange in the material MFU-4l (MFU-4l = Zn5Cl4(BTDD)3, H2BTDD = bis(1H-1,2,3-triazolo[4,5-b],[4′,5′-i])dibenzo[1,4]dioxin) was leveraged to create a well-defined and site-isolated Ni(II) active site bearing close structural homology to molecular tris-pyrazolylborate complexes. In the presence of ethylene and methylaluminoxane, the material consumes ethylene at a rate of 41,500 mol per mole of Ni per hour with a selectivity for 1-butene of up to 96.2%, exceeding the selectivity reported for the current industrial dimerization process.


ACS central science | 2016

Selective Dimerization of Ethylene to 1-Butene with a Porous Catalyst.

Eric D. Metzger; Carl K. Brozek; Robert J. Comito; Mircea Dincă

Current heterogeneous catalysts lack the fine steric and electronic tuning required for catalyzing the selective dimerization of ethylene to 1-butene, which remains one of the largest industrial processes still catalyzed by homogeneous catalysts. Here, we report that a metal–organic framework catalyzes ethylene dimerization with a combination of activity and selectivity for 1-butene that is premier among heterogeneous catalysts. The capacity for mild cation exchange in the material MFU-4l (MFU-4l = Zn5Cl4(BTDD)3, H2BTDD = bis(1H-1,2,3-triazolo[4,5-b],[4′,5′-i])dibenzo[1,4]dioxin) was leveraged to create a well-defined and site-isolated Ni(II) active site bearing close structural homology to molecular tris-pyrazolylborate complexes. In the presence of ethylene and methylaluminoxane, the material consumes ethylene at a rate of 41,500 mol per mole of Ni per hour with a selectivity for 1-butene of up to 96.2%, exceeding the selectivity reported for the current industrial dimerization process.


Journal of the American Chemical Society | 2017

Mechanism of Single-Site Molecule-Like Catalytic Ethylene Dimerization in Ni-MFU-4l

Eric D. Metzger; Robert J. Comito; Christopher H. Hendon; Mircea Dincă

A recently developed metal-organic framework (MOF) catalyst for the dimerization of ethylene has a combination of selectivity and activity that surpasses that of commercial homogeneous catalysts, which have dominated this important industrial process for nearly 50 years. The uniform catalytic sites available in MOFs provide a unique opportunity to directly study reaction mechanisms in heterogeneous catalysts, a problem typically intractable due to the multiplicity of coordination environments found in many solid catalysts. In this work, we use a combination of isotopic labeling studies, mechanistic probes, and DFT calculations to demonstrate that Ni-MFU-4l operates via the Cossee-Arlman mechanism, which has also been implicated in homogeneous late transition metal catalysts. These studies demonstrate that metal nodes in MOFs mimic homogeneous catalysts not just functionally, but also mechanistically. They provide a blueprint for the development of advanced heterogeneous catalysts with similar degrees of tunability to their homogeneous counterparts.


Nature Chemistry | 2017

Catalyst-controlled oligomerization for the collective synthesis of polypyrroloindoline natural products

Christopher R. Jamison; Joseph J. Badillo; Jeffrey M. Lipshultz; Robert J. Comito; David W. C. MacMillan

In nature, many organisms generate large families of natural product metabolites that have related molecular structures as a means to increase functional diversity and gain an evolutionary advantage against competing systems within the same environment. One pathway commonly employed by living systems to generate these large classes of structurally related families is oligomerization, wherein a series of enzymatically catalysed reactions is employed to generate secondary metabolites by iteratively appending monomers to a growing serial oligomer chain. The polypyrroloindolines are an interesting class of oligomeric natural products that consist of multiple cyclotryptamine subunits. Herein we describe an iterative application of asymmetric copper catalysis towards the synthesis of six distinct oligomeric polypyrroloindoline natural products: hodgkinsine, hodgkinsine B, idiospermuline, quadrigemine H and isopsychotridine B and C. Given the customizable nature of the small-molecule catalysts employed, we demonstrate that this strategy is further amenable to the construction of quadrigemine H-type alkaloids not isolated previously from natural sources. The collective synthesis of several oligomeric polypyrroloindoline natural products, including hodgkinsine, hodgkinsine B, idiospermuline, quadrigemine H and isopsychotridines B and C, is accomplished through the iterative action of an asymmetric small molecule copper catalyst. This strategy also enables the synthesis of putatively unnatural quadrigemine H-type isomers.


Journal of the American Chemical Society | 2017

Highly Stereoselective Heterogeneous Diene Polymerization by Co-MFU-4l: A Single-Site Catalyst Prepared by Cation Exchange

Romain J.-C. Dubey; Robert J. Comito; Zhenwei Wu; Guanghui Zhang; Adam J. Rieth; Christopher H. Hendon; Jeffrey T. Miller; Mircea Dincă

Molecular catalysts offer tremendous advantages for stereoselective polymerization because their activity and selectivity can be optimized and understood mechanistically using the familiar tools of organometallic chemistry. Yet, this exquisite control over selectivity comes at an operational price that is generally not justifiable for the large-scale manufacture of polyfolefins. In this report, we identify Co-MFU-4l, prepared by cation exchange in a metal-organic framework, as a solid catalyst for the polymerization of 1,3-butadiene with high stereoselectivity (>99% 1,4-cis). To our knowledge, this is the highest stereoselectivity achieved with a heterogeneous catalyst for this transformation. The polymers low polydispersity (PDI ≈ 2) and the catalysts ready recovery and low leaching indicate that our material is a structurally resilient single-site heterogeneous catalyst. Further characterization of Co-MFU-4l by X-ray absorption spectroscopy provided evidence for discrete, tris-pyrazolylborate-like coordination of Co(II). With this information, we identify a soluble cobalt complex that mimics the structure and reactivity of Co-MFU-4l, thus providing a well-defined platform for studying the catalytic mechanism in the solution phase. This work underscores the capacity for small molecule-like tunability and mechanistic tractability available to transition metal catalysis in metal-organic frameworks.


Angewandte Chemie | 2018

Stabilized Vanadium Catalyst for Olefin Polymerization by Site Isolation in a Metal-Organic Framework

Robert J. Comito; Zhenwei Wu; Guanghui Zhang; John A. Lawrence; Maciej D. Korzyński; Jeffrey A. Kehl; Jeffrey T. Miller; Mircea Dincă

Vanadium catalysts offer unique selectivity in olefin polymerization, yet are underutilized industrially owing to their poor stability and productivity. Reported here is the immobilization of vanadium by cation exchange in MFU-4l, thus providing a metal-organic framework (MOF) with vanadium in a molecule-like coordination environment. This material forms a single-site heterogeneous catalyst with methylaluminoxane and provides polyethylene with low polydispersity (PDI≈3) and the highest activity (up to 148 000 h-1 ) reported for a MOF-based polymerization catalyst. Furthermore, polyethylene is obtained as a free-flowing powder as desired industrially. Finally, the catalyst shows good structural integrity and retains polymerization activity for over 24 hours, both promising attributes for the commercialization of vanadium-based polyolefins.


Archive | 2017

CCDC 1579914: Experimental Crystal Structure Determination

Romain J.-C. Dubey; Robert J. Comito; Zhenwei Wu; Guanghui Zhang; Adam J. Rieth; Christopher H. Hendon; Jeffrey T. Miller; Mircea Dincă

Related Article: Romain J.-C. Dubey, Robert J. Comito, Zhenwei Wu, Guanghui Zhang, Adam J. Rieth, Christopher H. Hendon, Jeffrey T. Miller, and Mircea Dincă|2017|J.Am.Chem.Soc.|139|12664|doi:10.1021/jacs.7b06841


Journal of the American Chemical Society | 2016

Single-Site Heterogeneous Catalysts for Olefin Polymerization Enabled by Cation Exchange in a Metal-Organic Framework

Robert J. Comito; Keith J. Fritzsching; Benjamin J. Sundell; Klaus Schmidt-Rohr; Mircea Dincă


Journal of the American Chemical Society | 2013

Enantioselective Intramolecular Aldehyde α-Alkylation with Simple Olefins: Direct Access to Homo-Ene Products

Robert J. Comito; Fernanda Gadini Finelli; David W. C. MacMillan


Organometallics | 2017

Selective Dimerization of Propylene with Ni-MFU-4l

Robert J. Comito; Eric D. Metzger; Zhenwei Wu; Guanghui Zhang; Christopher H. Hendon; Jeffrey T. Miller; Mircea Dincă

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Mircea Dincă

Massachusetts Institute of Technology

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Christopher H. Hendon

Massachusetts Institute of Technology

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Adam J. Rieth

Massachusetts Institute of Technology

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Carl K. Brozek

Massachusetts Institute of Technology

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Ashley M. Wright

Massachusetts Institute of Technology

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