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Dive into the research topics where Kerry Betz is active.

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Featured researches published by Kerry Betz.


Nature | 2015

Silylation of C–H bonds in aromatic heterocycles by an Earth-abundant metal catalyst

Anton A. Toutov; Wen-Bo Liu; Kerry Betz; Alexey Fedorov; Brian M. Stoltz; Robert H. Grubbs

Heteroaromatic compounds containing carbon–silicon (C–Si) bonds are of great interest in the fields of organic electronics and photonics, drug discovery, nuclear medicine and complex molecule synthesis, because these compounds have very useful physicochemical properties. Many of the methods now used to construct heteroaromatic C–Si bonds involve stoichiometric reactions between heteroaryl organometallic species and silicon electrophiles or direct, transition-metal-catalysed intermolecular carbon–hydrogen (C–H) silylation using rhodium or iridium complexes in the presence of excess hydrogen acceptors. Both approaches are useful, but their limitations include functional group incompatibility, narrow scope of application, high cost and low availability of the catalysts, and unproven scalability. For this reason, a new and general catalytic approach to heteroaromatic C–Si bond construction that avoids such limitations is highly desirable. Here we report an example of cross-dehydrogenative heteroaromatic C–H functionalization catalysed by an Earth-abundant alkali metal species. We found that readily available and inexpensive potassium tert-butoxide catalyses the direct silylation of aromatic heterocycles with hydrosilanes, furnishing heteroarylsilanes in a single step. The silylation proceeds under mild conditions, in the absence of hydrogen acceptors, ligands or additives, and is scalable to greater than 100 grams under optionally solvent-free conditions. Substrate classes that are difficult to activate with precious metal catalysts are silylated in good yield and with excellent regioselectivity. The derived heteroarylsilane products readily engage in versatile transformations enabling new synthetic strategies for heteroaromatic elaboration, and are useful in their own right in pharmaceutical and materials science applications.


Nature Protocols | 2015

Catalytic C-H bond silylation of aromatic heterocycles

Anton A. Toutov; Wen-Bo Liu; Kerry Betz; Brian M. Stoltz; Robert H. Grubbs

This protocol describes a method for the direct silylation of the carbon–hydrogen (C–H) bond of aromatic heterocycles using inexpensive and abundant potassium tert-butoxide (KOt-Bu) as the catalyst. This catalytic cross-dehydrogenative coupling of simple hydrosilanes and various electron-rich aromatic heterocycles enables the synthesis of valuable silylated heteroarenes. The products thus obtained can be used as versatile intermediates, which facilitate the divergent synthesis of pharmaceutically relevant compound libraries from a single Si-containing building block. Moreover, a variety of complex Si-containing motifs, such as those produced by this protocol, are being actively investigated as next-generation therapeutic agents, because they can have improved pharmacokinetic properties compared with the original all-carbon drug molecules. Current competing methods for C–H bond silylation tend to be incompatible with functionalities, such as Lewis-basic heterocycles, that are often found in pharmaceutical substances; this leaves de novo synthesis as the principal strategy for preparation of the target sila-drug analog. Moreover, competing methods tend to be limited in the scope of hydrosilane that can be used, which restricts the breadth of silicon-containing small molecules that can be accessed. The approach outlined in this protocol enables the chemoselective and regioselective late-stage silylation of small heterocycles, including drugs and drug derivatives, with a broad array of hydrosilanes in the absence of precious metal catalysts, stoichiometric reagents, sacrificial hydrogen acceptors or high temperatures. Moreover, H2 is the only by-product generated. The procedure normally requires 48–75 h to be completed.


Journal of the American Chemical Society | 2017

Alkali Metal-Hydroxide-Catalyzed C(sp)–H Bond silylation

Anton A. Toutov; Kerry Betz; David P. Schuman; Wen-Bo Liu; Alexey Fedorov; Brian M. Stoltz; Robert H. Grubbs

Disclosed is a mild, scalable, and chemoselective catalytic cross-dehydrogenative C-H bond functionalization protocol for the construction of C(sp)-Si bonds in a single step. The scope of the alkyne and hydrosilane partners is substantial, providing an entry point into various organosilane building blocks and additionally enabling the discovery of a number of novel synthetic strategies. Remarkably, the optimal catalysts are NaOH and KOH.


Metrologia | 2012

Laser power-meter comparison at far-infrared wavelengths and terahertz frequencies

John H. Lehman; Marla L. Dowell; Nina Basta Popovic; Kerry Betz; Erich N. Grossman

We have evaluated the responsivity of seven different thermal detectors compared to an electrically calibrated photoacoustic reference detector at 119 µm (2.5 THz) and 394 µm (0.76 THz) laser wavelengths. Among the thermal detectors is an electrically calibrated thermopile having a vertically aligned carbon nanotube array as the absorber. We document the uncertainty contributions attributable to the photoacoustic reference detector along with a definition of a calibration factor based on the measurement protocol. The expanded relative uncertainty (k = 2) and a calibration factor of each detector are tabulated.


Organic Letters | 2016

Sodium Hydroxide Catalyzed Dehydrocoupling of Alcohols with Hydrosilanes

Anton A. Toutov; Kerry Betz; Michael C. Haibach; Andrew M. Romine; Robert H. Grubbs


Archive | 2013

Transition-metal-free silylation of aromatic compounds

Robert H. Grubbs; Alexey Fedorov; Anton A. Toutov; Kerry Betz


Nature Energy | 2017

A potassium tert-butoxide and hydrosilane system for ultra-deep desulfurization of fuels

Anton A. Toutov; Mike Salata; Alexey Fedorov; Yun-Fang Yang; Yong Liang; Romain Cariou; Kerry Betz; Erik P. A. Couzijn; John W. Shabaker; K. N. Houk; Robert H. Grubbs


Archive | 2015

SILYLATION OF AROMATIC HETEROCYCLES BY DISILANES USING POTASSIUM ALKOXIDE CATALYSTS

Anton A. Toutov; Wen-Bo Liu; Brian M. Stoltz; Robert H. Grubbs; Kerry Betz; David P. Schuman


Archive | 2015

Silylation of aromatic heterocycles by earth abundant transition-metal-free catalysts

Anton A. Toutov; Kerry Betz; Alexey Federov; Brian M. Stoltz; Wen-Bo Liu; Robert H. Grubbs


Archive | 2016

BASE-CATALYZED SILYLATION OF TERMINAL OLEFINIC C-H BONDS

Anton A. Toutov; Wen-Bo Liu; Kerry Betz; Alexey Fedorov; Brian M. Stoltz; Robert H. Grubbs

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Anton A. Toutov

California Institute of Technology

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Robert H. Grubbs

California Institute of Technology

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Brian M. Stoltz

California Institute of Technology

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Wen-Bo Liu

Chinese Academy of Sciences

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David P. Schuman

California Institute of Technology

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Alexey Federov

California Institute of Technology

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Erich N. Grossman

National Institute of Standards and Technology

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John H. Lehman

National Institute of Standards and Technology

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K. N. Houk

University of California

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