Jacopo Catalano
Aarhus University
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Publication
Featured researches published by Jacopo Catalano.
ACS Nano | 2016
Sofie Haldrup; Jacopo Catalano; Mogens Hinge; Grethe Vestergaard Jensen; Jan Skov Pedersen; Anders Bentien
The electrokinetic energy conversion (EKEC) of hydraulic work directly into electrical energy has been investigated in charged polymeric membranes with different pore charge densities and characteristic diameters of the nanoporous network. The membranes were synthesized from blends of nitrocellulose and sulfonated polystyrene (SPS) and were comprehensively characterized with respect to structure, composition, and transport properties. It is shown that the SPS can be used as a sacrificial pore generation medium to tune the pore size and membrane porosity, which in turn highly affects the transport properties of the membranes. Furthermore, it is shown that very high EKEC efficiencies (>35%) are encountered in a rather narrow window of the properties of the nanoporous membrane network, that is, with pore diameters of ca. 10 nm and pore charge densities of 4.6 × 10(2) to 1.5 × 10(3) mol SO3(-) m(-3) for dilute solutions (0.03 M LiCl). The high absolute value of the efficiency combined with the determination of the optimal membrane morphology makes membrane-based EKEC devices a step closer to practical applications and high-performance membrane design less empirical.
Nano Letters | 2015
Sofie Haldrup; Jacopo Catalano; Michael Ryan Hansen; Manfred Wagner; Grethe Vestergaard Jensen; Jan Skov Pedersen; Anders Bentien
The synthesis, characterization, and electrokinetic energy conversion performance have been investigated experimentally in a charged polymeric membrane based on a blend of nitrocellulose and sulfonated polystyrene. The membrane is characterized by a moderate ion exchange capacity and a relatively porous structure with average pore diameter of 11 nm. With electrokinetic energy conversion, pressure can be converted directly into electric energy and vice versa. From the electrokinetic transport properties, a remarkably large intrinsic maximum efficiency of 46% is found. It is anticipated that the results are an experimental verification of theoretical models that predict high electrokinetic energy conversion efficiency in pores with high permselectivity and hydrodynamic slip flow. Furthermore, the result is a promising step for obtaining efficient low-cost electrokinetic generators and pumps for small or microscale applications.
Journal of Colloid and Interface Science | 2017
Mette Birch Kristensen; Anders Bentien; Michele Tedesco; Jacopo Catalano
In this work we use the general space-charge (SC) theory for a combined transport model of fluid and ion through cylindrical nanopores to derive equations for the membrane potential and counter-ion transport numbers. We discuss this approach for ion exchange membranes assuming aqueous domains as interconnected network of cylindrical pores. The transport number calculations from the SC theory are compared with the corresponding ones from the uniform potential (UP) and Teorell-Meyer-Sievers (TMS) models in the case of both zero and non-zero concentration gradient across the membrane and with an applied current density. By using this approach we suggest the optimal conditions for performing membrane potential experiments (i.e. choice of electrolyte and concentration difference) depending on an easily accessible membrane property, namely the volumetric charge density. We also theoretically describe a novel dynamic method to determine in a single experiment the membrane potential and membrane conductivity. To exemplify the use of the dynamic method we report the calculations based on typical operating conditions of the reverse electrodialysis process. The numerical results are presented in terms of the electrical potential difference versus the average pore radius and charge density. The resulting map is a useful tool for a rational design of an effective membrane morphology for a specific electrochemical application.
Data in Brief | 2017
David Nicolas Østedgaard-Munck; Jacopo Catalano; Mette Birch Kristensen; Anders Bentien
This article elaborates on the design and optimization of a specialized flow cell for the measurement of direct conversion of pressure into electrical energy (Electrokinetic Energy Conversion, EKEC) which has been presented in Østedgaard-Munck et al. (2017) [1]. Two main flow cell parameters have been monitored and optimized: A) the hydraulic pressure profile on each side of the membrane introduced by pumps recirculating the electrolyte solution through the flow fields and B) the electrical resistance between the current collectors across the combined flow cell. The latter parameter has been measured using four-point Electrochemical Impedance spectroscopy (EIS) for different flow rates and concentrations. The total cell resistance consists of contributions from different components: the membrane (Rmem), anode charge transfer (RA), cathode charge transfer (RC), and ion diffusion in the porous electrodes (RD). The intrinsic membrane properties of Nafion 117 has been investigated experimentally in LiI/I2 solutions with concentrations ranging between 0.06 and 0.96 M and used to identify the preferred LiI/I2 solution concentration. This was achieved by measuring the solution uptake, internal solution concentration and ion exchange capacity. The membrane properties were further used to calculate the transport coefficients and electrokinetic Figure of merit in terms of the Uniform potential and Space charge models. Special attention has been put on the streaming potential coefficient which is an intrinsic property.
Journal of Membrane Science | 2009
Jacopo Catalano; Marco Giacinti Baschetti; Giulio C. Sarti
International Journal of Hydrogen Energy | 2012
Jacopo Catalano; T. Myezwa; M. De Angelis; M. Giacinti Baschetti; Giulio C. Sarti
Journal of Membrane Science | 2010
Jacopo Catalano; Marco Giacinti Baschetti; Giulio C. Sarti
Journal of Membrane Science | 2009
Mirella Coroneo; Giuseppina Montante; Jacopo Catalano; Alessandro Paglianti
Journal of Power Sources | 2014
Bjørn Sjøgren Kilsgaard; Sofie Haldrup; Jacopo Catalano; Anders Bentien
Macromolecules | 2012
Maria-Chiara Ferrari; Jacopo Catalano; Marco Giacinti Baschetti; Maria Grazia De Angelis; Giulio C. Sarti