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Dive into the research topics where Ayalew H. Assen is active.

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Featured researches published by Ayalew H. Assen.


Angewandte Chemie | 2015

Ultra-Tuning of the Rare-Earth fcu-MOF Aperture Size for Selective Molecular Exclusion of Branched Paraffins

Ayalew H. Assen; Youssef Belmabkhout; Karim Adil; Prashant M. Bhatt; Dong-Xu Xue; Hao Jiang; Mohamed Eddaoudi

Using isoreticular chemistry allows the design and construction of a new rare-earth metal (RE) fcu-MOF with a suitable aperture size for practical steric adsorptive separations. The judicious choice of a relatively short organic building block, namely fumarate, to bridge the 12-connected RE hexanuclear clusters has afforded the contraction of the well-defined RE-fcu-MOF triangular window aperture, the sole access to the two interconnected octahedral and tetrahedral cages. The newly constructed RE (Y(3+) and Tb(3+)) fcu-MOF analogues display unprecedented total exclusion of branched paraffins from normal paraffins. The resultant window aperture size of about 4.7 Å, regarded as a sorbate-size cut-off, enabled a complete sieving of branched paraffins from normal paraffins. The results are supported by collective single gas and mixed gas/vapor adsorption and calorimetric studies.


Angewandte Chemie | 2016

H2S Sensors: Fumarate‐Based fcu‐MOF Thin Film Grown on a Capacitive Interdigitated Electrode

Omar Yassine; Osama Shekhah; Ayalew H. Assen; Youssef Belmabkhout; Khaled N. Salama; Mohamed Eddaoudi

Herein we report the fabrication of an advanced sensor for the detection of hydrogen sulfide (H2 S) at room temperature, using thin films of rare-earth metal (RE)-based metal-organic framework (MOF) with underlying fcu topology. This unique MOF-based sensor is made via the in situ growth of fumarate-based fcu-MOF (fum-fcu-MOF) thin film on a capacitive interdigitated electrode. The sensor showed a remarkable detection sensitivity for H2 S at concentrations down to 100 ppb, with the lower detection limit around 5 ppb. The fum-fcu-MOF sensor exhibits a highly desirable detection selectivity towards H2 S vs. CH4 , NO2 , H2 , and C7 H8 as well as an outstanding H2 S sensing stability as compared to other reported MOFs.


ACS Sensors | 2017

MOFs for the Sensitive Detection of Ammonia: Deployment of fcu-MOF Thin Films as Effective Chemical Capacitive Sensors

Ayalew H. Assen; Omar Yassine; Osama Shekhah; Mohamed Eddaoudi; Khaled N. Salama

This work reports on the fabrication and deployment of a select metal-organic framework (MOF) thin film as an advanced chemical capacitive sensor for the sensing/detection of ammonia (NH3) at room temperature. Namely, the MOF thin film sensing layer consists of a rare-earth (RE) MOF (RE-fcu-MOF) deposited on a capacitive interdigitated electrode (IDE). Purposely, the chemically stable naphthalene-based RE-fcu-MOF (NDC-Y-fcu-MOF) was elected and prepared/arranged as a thin film on a prefunctionalized capacitive IDE via the solvothermal growth method. Unlike earlier realizations, the fabricated MOF-based sensor showed a notable detection sensitivity for NH3 at concentrations down to 1 ppm, with a detection limit appraised to be around 100 ppb (at room temperature) even in the presence of humidity and/or CO2. Distinctly, the NDC-Y-fcu-MOF based sensor exhibited the required stability to NH3, in contrast to other reported MOFs, and a remarkable detection selectivity toward NH3 vs CH4, NO2, H2, and C7H8. The NDC-Y-fcu-MOF based sensor exhibited excellent performance for sensing ammonia for simulated breathing system in the presence of the mixture of carbon dioxide and/or humidity (water vapor), with no major alteration in the detection signal.


Advanced Materials | 2017

Valuing Metal–Organic Frameworks for Postcombustion Carbon Capture: A Benchmark Study for Evaluating Physical Adsorbents

Karim Adil; Prashant M. Bhatt; Youssef Belmabkhout; Sk Md Towsif Abtab; Hao Jiang; Ayalew H. Assen; Arijit Mallick; Amandine Cadiau; Jamal Aqil; Mohamed Eddaoudi

The development of practical solutions for the energy-efficient capture of carbon dioxide is of prime importance and continues to attract intensive research interest. Conceivably, the implementation of adsorption-based processes using different cycling modes, e.g., pressure-swing adsorption or temperature-swing adsorption, offers great prospects to address this challenge. Practically, the successful deployment of practical adsorption-based technologies depends on the development of made-to-order adsorbents expressing mutually two compulsory requisites: i) high selectivity/affinity for CO2 and ii) excellent chemical stability in the presence of impurities. This study presents a new comprehensive experimental protocol apposite for assessing the prospects of a given physical adsorbent for carbon capture under flue gas stream conditions. The protocol permits: i) the baseline performance of commercial adsorbents such as zeolite 13X, activated carbon versus liquid amine scrubbing to be ascertained, and ii) a standardized evaluation of the best reported metal-organic framework (MOF) materials for carbon dioxide capture from flue gas to be undertaken. This extensive study corroborates the exceptional CO2 capture performance of the recently isolated second-generation fluorinated MOF material, NbOFFIVE-1-Ni, concomitant with an impressive chemical stability and a low energy for regeneration. Essentially, the NbOFFIVE-1-Ni adsorbent presents the best compromise by satisfying all the required metrics for efficient CO2 scrubbing.


Journal of the American Chemical Society | 2018

Enriching the Reticular Chemistry Repertoire: Merged Nets Approach for the Rational Design of Intricate Mixed-Linker Metal–Organic Framework Platforms

Hao Jiang; Jiangtao Jia; Aleksander Shkurenko; Zhijie Chen; Karim Adil; Youssef Belmabkhout; Lukasz Weselinski; Ayalew H. Assen; Dong-Xu Xue; Michael O’Keeffe; Mohamed Eddaoudi

Rational design and construction of metal-organic frameworks (MOFs) with intricate structural complexity are of prime importance in reticular chemistry. We report our latest addition to the design toolbox in reticular chemistry, namely the concept of merged nets based on merging two edge-transitive nets into a minimal edge-transitive net for the rational construction of intricate mixed-linker MOFs. In essence, a valuable net for design enclosing two edges (not related by symmetry) is rationally generated by merging two edge-transitive nets, namely (3,6)-coordinated spn and 6-coordinated hxg. The resultant merged-net, a (3,6,12)-coordinated sph net with net transitivity [32] enclosing three nodes and two distinct edges, offers potential for deliberate design of intricate mixed-linker MOFs. We report implementation of the merged-net approach for the construction of isoreticular rare-earth mixed-linker MOFs, sph-MOF-1 to -4, based on the assembly of 12-c hexanuclear carboxylate-based molecular building blocks (MBBs), displaying cuboctahedral building units, 3-c tritopic ligands, and 6-c hexatopic ligands. The resultant sph-MOFs represent the first examples of MOFs where the underlying net is merged from two 3-periodic edge-transitive nets, spn and hxg. Distinctively, the sph-MOF-3 represents the first example of a mixed-linker MOF to enclose both trigonal and hexagonal linkers. The merged-nets approach allows the logical practice of isoreticular chemistry by taking into account the mathematically correlated dimensions of the two ligands to afford the deliberate construction of a mixed-linker mesoporous MOF, sph-MOF-4. The merged-net equation and two key parameters, ratio constant and MBB constant, are disclosed. A merged-net strategy for the design of mixed-linker MOFs by strictly controlling the size ratio between edges is introduced.


Chemical Society Reviews | 2017

Gas/vapour separation using ultra-microporous metal–organic frameworks: insights into the structure/separation relationship

Karim Adil; Youssef Belmabkhout; Renjith S. Pillai; Amandine Cadiau; Prashant M. Bhatt; Ayalew H. Assen; Guillaume Maurin; Mohamed Eddaoudi


Chemical Engineering Journal | 2017

Isoreticular rare earth fcu-MOFs for the selective removal of H2S from CO2 containing gases

Prashant M. Bhatt; Youssef Belmabkhout; Ayalew H. Assen; Łukasz J. Weseliński; Hao Jiang; Amandine Cadiau; Dong-Xu Xue; Mohamed Eddaoudi


ACS energy letters | 2017

Metal–Organic Framework-Based Separators for Enhancing Li–S Battery Stability: Mechanism of Mitigating Polysulfide Diffusion

Mengliu Li; Yi Wan; Jing-Kai Huang; Ayalew H. Assen; Chia-En Hsiung; Hao Jiang; Yu Han; Mohamed Eddaoudi; Zhiping Lai; Jun Ming; Lain-Jong Li


Angewandte Chemie | 2016

Rücktitelbild: H2S Sensors: Fumarate-Based fcu-MOF Thin Film Grown on a Capacitive Interdigitated Electrode (Angew. Chem. 51/2016)

Omar Yassine; Osama Shekhah; Ayalew H. Assen; Youssef Belmabkhout; Khaled N. Salama; Mohamed Eddaoudi


Angewandte Chemie | 2016

Back Cover: H2S Sensors: Fumarate-Based fcu-MOF Thin Film Grown on a Capacitive Interdigitated Electrode (Angew. Chem. Int. Ed. 51/2016)

Omar Yassine; Osama Shekhah; Ayalew H. Assen; Youssef Belmabkhout; Khaled N. Salama; Mohamed Eddaoudi

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Mohamed Eddaoudi

King Abdullah University of Science and Technology

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Youssef Belmabkhout

King Abdullah University of Science and Technology

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Hao Jiang

King Abdullah University of Science and Technology

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Karim Adil

King Abdullah University of Science and Technology

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Prashant M. Bhatt

King Abdullah University of Science and Technology

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Dong-Xu Xue

King Abdullah University of Science and Technology

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Khaled N. Salama

King Abdullah University of Science and Technology

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Omar Yassine

King Abdullah University of Science and Technology

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Osama Shekhah

King Abdullah University of Science and Technology

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Amandine Cadiau

King Abdullah University of Science and Technology

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