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    Omran, Hesham (5)
    Salama, Khaled N. (5)
    Sapsanis, Christos (2)Zidan, Mohammed A. (2)Arsalan, Muhammad (1)View MoreDepartment
    Computer, Electrical and Mathematical Sciences and Engineering (CEMSE) Division (5)
    Electrical Engineering Program (5)
    Physical Sciences and Engineering (PSE) Division (5)
    Sensors Lab (4)Advanced Membranes and Porous Materials Research Center (2)View MoreJournalElectronics Letters (1)International Journal of Circuit Theory and Applications (1)Sensors (1)Sensors and Actuators A: Physical (1)Soft Matter (1)PublisherElsevier BV (1)Institution of Engineering and Technology (IET) (1)MDPI AG (1)Royal Society of Chemistry (RSC) (1)Wiley (1)SubjectADC (1)capacitive sensors (1)CDC (1)gas sensor test setup (1)humidity sensors (1)View MoreType
    Article (5)
    Year (Issue Date)2016 (1)2015 (1)2014 (1)2013 (1)2011 (1)Item Availability
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    Insights on Capacitive Interdigitated Electrodes Coated with MOF Thin Films: Humidity and VOCs Sensing as a Case Study

    Sapsanis, Christos; Omran, Hesham; Chernikova, Valeriya; Shekhah, Osama; Belmabkhout, Youssef; Buttner, Ulrich; Eddaoudi, Mohamed; Salama, Khaled N. (Sensors, MDPI AG, 2015-07-24) [Article]
    A prototypical metal-organic framework (MOF), a 2D periodic porous structure based on the assembly of copper ions and benzene dicarboxylate (bdc) ligands (Cu(bdc)·xH2O), was grown successfully as a thin film on interdigitated electrodes (IDEs). IDEs have been used for achieving planar CMOS-compatible low-cost capacitive sensing structures for the detection of humidity and volatile organic compounds (VOCs). Accordingly, the resultant IDEs coated with the Cu(bdc)·xH2O thin film was evaluated, for the first time, as a capacitive sensor for gas sensing applications. A fully automated setup, using LabVIEW interfaces to experiment conduction and data acquisition, was developed in order to measure the associated gas sensing performance.
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    Memristor-based reactance-less oscillator

    Zidan, Mohammed A.; Omran, Hesham; Radwan, Ahmed G.; Salama, Khaled N. (Electronics Letters, Institution of Engineering and Technology (IET), 2011-10-24) [Article]
    The first reactance-less oscillator is introduced. By using a memristor, the oscillator can be fully implemented on-chip without the need for any capacitors or inductors, which results in an area-efficient fully integrated solution. The concept of operation of the proposed oscillator is explained and detailed mathematical analysis is introduced. Closed-form expressions for the oscillation frequency and oscillation conditions are derived. Finally, the derived equations are verified with circuit simulations showing excellent agreement. © 2011 The Institution of Engineering and Technology.
    Thumbnail

    A family of memristor-based reactance-less oscillators

    Zidan, Mohammed A.; Omran, Hesham; Smith, Casey; Syed, Ahad; Radwan, Ahmed Gomaa; Salama, Khaled N. (International Journal of Circuit Theory and Applications, Wiley, 2013-04-11) [Article]
    In this paper, we present for the first time a family of memristor-based reactance-less oscillators (MRLOs). The proposed oscillators require no reactive components, that is, inductors or capacitors, rather, the ‘resistance storage’ property of memristor is exploited to generate the oscillation. Different types of MRLO family are presented, and for each type, closed form expressions are derived for the oscillation condition, oscillation frequency, and range of oscillation. Derived equations are further verified using transient circuit simulations. A comparison between different MRLO types is also discussed. In addition, detailed fabrication steps of a memristor device and experimental results for the first MRLO physical realization are presented.
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    An integrated energy-efficient capacitive sensor digital interface circuit

    Omran, Hesham; Arsalan, Muhammad; Salama, Khaled N. (Sensors and Actuators A: Physical, Elsevier BV, 2014-05-23) [Article]
    In this paper, we propose an energy-efficient 13-bit capacitive sensor interface circuit. The proposed design fully relies on successive approximation algorithm, which eliminates the need for oversampling and digital decimation filtering, and thus low-power consumption is achieved. The proposed architecture employs a charge amplifier stage to acheive parasitic insensitive operation and fine absolute resolution. Moreover, the output code is not affected by offset voltages or charge injection. The successive approximation algorithm is implemented in the capacitance-domain using a coarse-fine programmable capacitor array, which allows digitizing wide capacitance range in compact area. Analysis for the maximum achievable resolution due to mismatch is provided. The proposed design is insensitive to any reference voltage or current which translates to low temperature sensitivity. The operation of a prototype fabricated in a standard CMOS technology is experimentally verified using both on-chip and off-chip capacitive sensors. Compared to similar prior work, the fabricated prototype achieves and excellent energy efficiency of 34 pJ/step.
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    Light Responsive Two-Component Supramolecular Hydrogel: A Sensitive Platform for Humidity Sensors

    Samai, Suman; Sapsanis, Christos; Patil, Sachin; Ezzeddine, Alaa; Moosa, Basem; Omran, Hesham; Emwas, Abdul-Hamid M.; Salama, Khaled N.; Khashab, Niveen M. (Soft Matter, Royal Society of Chemistry (RSC), 2016) [Article]
    The supramolecular assembly of anionic azobenzene dicarboxylate and cationic cetyltrimethylammonium bromide (CTAB) formed a stimuli responsive hydrogel with a critical gelation concentration (CGC) of 0.33 wt%. This self-sustainable two-component system was able to repair damage upon light irradiation. Moreover, it was successfully employed in the fabrication of highly sensitive humidity sensors for the first time.
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