Applied Catalysis B (@apcatb) 's Twitter Profile
Applied Catalysis B

@apcatb

Exploring catalysts & reaction mechanisms for sustainable energy, environment & chemical synthesis for a greener future. Tweets from APCAT-B editors.

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calendar_today23-05-2023 13:05:49

104 Tweet

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Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Recent publication has demonstrated that enriched oxygen vacancies were stabilized with ruthenium doping on niobium oxide/3-D reduced graphene oxide nanosphere to prepare a functional separator layer for LiPSs diffusion prevention. Find out more:  lnkd.in/g3SgyQYz

Recent publication has demonstrated that enriched oxygen vacancies were stabilized with ruthenium doping on niobium oxide/3-D reduced graphene oxide nanosphere to prepare a functional separator layer for LiPSs diffusion prevention. 

Find out more: 
lnkd.in/g3SgyQYz
Applied Catalysis B (@apcatb) 's Twitter Profile Photo

By using NiMo/SiO2 catalysts in the hydropyrolysis of lignin, selectivity of 21.99% liquid hydrocarbons and 70.50% aviation-range hydrocarbons can be achieved. This study marks a significant step forward in the pursuit of #sustainableaviationfuel. sciencedirect.com/science/articl…

By using NiMo/SiO2 catalysts in the hydropyrolysis of lignin, selectivity of 21.99% liquid hydrocarbons and 70.50% aviation-range hydrocarbons can be achieved. This study marks a significant step forward in the pursuit of #sustainableaviationfuel.

sciencedirect.com/science/articl…
Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Machine learning to predict activation energies? Check out the paper by Dion Vlachos and colleagues Univ. of Delaware for developing models to predict activation energies of C-C and C-H scission in C1 to C6 species in hydrogenolysis reactions on Ru, Pt, and Rh. sciencedirect.com/science/articl…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Si quantum dots coupled with Cu-doped zinc indium sulfide heterostructure was shown to split water into hydrogen and oxygen under visible light illumination due to the synergy of SiQDs (facilitate water oxidation) and Cu doping (drive hydrogen evolution) sciencedirect.com/science/articl…

Si quantum dots coupled with Cu-doped zinc indium sulfide heterostructure was shown to split water into hydrogen and oxygen under visible light illumination due to the synergy of SiQDs (facilitate water oxidation) and Cu doping (drive hydrogen evolution)
sciencedirect.com/science/articl…
Flaherty_Catalysis (@flaherty_lab) 's Twitter Profile Photo

Did you know tuning active site locations in MWW zeolites can significantly alter liquid-phase reactions? Ohsung and David Potts's new paper in Applied Catalysis B shows active sites located in the sinusoidal channels have the greatest 1-hexene epoxidation rates. authors.elsevier.com/a/1j0w83Id%7Et…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Integrated solar-driven PV-EC system with diaphragm electrolytic reactor can achieve 12 % solar-to-hydrogen energy conversion efficiency and one-step efficient sulfur-related product recovery process. Check out more here: doi.org/10.1016/j.apca…

Integrated solar-driven PV-EC system with diaphragm electrolytic reactor can achieve 12 % solar-to-hydrogen energy conversion efficiency and one-step efficient sulfur-related product recovery process.

Check out more here:
doi.org/10.1016/j.apca…
Ive Hermans (@hermansgroup) 's Twitter Profile Photo

First paper with superstars @YomairaPT and Eranda Nikolla is online! Great job, Abdullah! Stay tuned for the follow up coming later this year! sciencedirect.com/science/articl…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Check out this recent work led by Charlie Werth UT Austin for a Cu-based catalyst design strategy enabling electrocatalytic nitrate selective removal from water. sciencedirect.com/science/articl…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Check out this recent Review led by Placidus Amama from K-State evaluating the prospects, challenges and technical considerations for MXENES applications in photocatalytic NOx oxidation. sciencedirect.com/science/articl…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Experimental + theoretical work led by Paolucci Group  and Bill Epling from UVA reveals the impact of the cu speciation on sulfur poisoning during high-temperature SCR of NOx over Cu/ Cu-SSZ-13 catalysts. doi.org/10.1016/j.apca…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

An experimental + theoretical work led by Jingguang Chen, Ping Liu, and Zhexi Lin from Columbia University and Brookhaven Lab demonstrates the effects of Cu in regulating biomass dehydrogenation over molybdenum-based catalysts. doi.org/10.1016/j.apca…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

The recent work led by Jan-Dierk Grunwaldt and Maria Casapu evaluated the optimal loading of Pd on CeO2 catalyst for achieving high methane oxidation activity and stability. Find out more from doi.org/10.1016/j.apca…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Check out the latest work by Flaherty_Catalysis from Georgia Tech in revealing the most suitable cobalt site in ZSM-5 for CH3CN formation through a trimolecular primary reaction among C2H6, NH3, and O2. sciencedirect.com/science/articl…

Applied Catalysis B (@apcatb) 's Twitter Profile Photo

Check out the latest work by George Huber and colleagues from UW–Madison in producing δ-valerolactone from biobased 2-hydroxytetrahydropyran by copper catalysts at optimal conditions validated by experimental and modeling. sciencedirect.com/science/articl…

Siddarth H Krishna (@krishnacatal) 's Twitter Profile Photo

Excited to share the first original research article from the Krishna Group in Applied Catalysis B ! doi.org/10.1016/j.apca… We elucidate the redox pathways by which greenhouse gas N2O is reduced by NO and NH3 over iron-zeolite catalysts, an important technology for renewable NH3 engines.

Excited to share the first original research article from the Krishna Group in <a href="/ApCatB/">Applied Catalysis B</a> ! 
doi.org/10.1016/j.apca…
We elucidate the redox pathways by which greenhouse gas N2O is reduced by NO and NH3 over iron-zeolite catalysts, an important technology for renewable NH3 engines.