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I. Moreno

Publications and source records attributed to I. Moreno.

2 recordsLinked to original sources

Influence of Ultramicroporosity and Surface Chemistry on Dynamic CO2 Capture in Activated Carbons

Activated carbons are promising adsorbents for post-combustion CO2 capture due to their high surface area, tunable microporosity, and resistance to moisture and flue-gas impurities. Despite extensive equilibrium adsorption studies, the dynamic behavior of activated carbons under fixed-bed operating conditions relevant to post-combustion CO2/N2 remains insufficiently understood, particularly for renewable materials. In this work, the adsorption and separation behavior of CO2/N2 mixtures on a commercial coal-derived activated carbon (WS-480) and a biomass-based activated carbon (MSP700-A900CO2) is comparatively evaluated by combining experimental measurements and simulations. We examine the physicochemical properties of both materials, revealing that although WS-480 exhibits a higher of porosity, MSP700-A900CO2 contains a larger fraction of ultramicropores (<0.7 nm) and a broader distribution of oxygen-containing functional groups. These characteristics result in higher CO2 adsorption capacities for MSP700-A900CO2 in fixed-bed breakthrough experiments conducted under varying flow rates, temperatures and CO2 concentrations. We employ atomistic activated carbon models, augmented with surface functional groups as representations of WS-480 and MSP700-A900CO2, achieving close agreement with experimental adsorption data. The validated models are subsequently used to predict CO2/N2 separation under equilibrium and dynamic conditions, reproducing the experimental breakthrough behavior while providing molecular-level insight into the influence of pore structure and surface chemistry on adsorption performance.

cond-mat.mtrl-sci

Experimental Evidence on Non-Applicability of the Standard Retardation Condition to Bound Magnetic Fields and on New Generalized Biot-Savart Law

In this work we made an analysis of the current status of velocity dependent (bound) field components in the framework of the standard electromagnetic theory. Preliminary discussions of the structure of the magnetic field due to an idealized oscillating magnetic dipole provided us with the quantitative insights on the relative contribution of velocity dependent (bound) and acceleration dependent (radiation) terms into the resultant magnetic field. According to this analysis we defined the methodological scheme based on a generalized (time-dependent) Biot-Savart law capable to test the applicability of the standard retardation condition on bound field components. In the second part of this work we made the theoretical analysis of the finite size multi-section antennas, confirming the validity of the methodological scheme conceived for an idealized magnetic dipole. The use of multi-section antennas is fully justified by a substantial rise of the ratio of bound-to-radiation field strength. Finally, we effected numerical calculations taking into account particular experimental settings and compared them with experimentally obtained data that unambiguously indicate on the non-applicability of the standard retardation condition to bound magnetic fields. In addition, experimental observations show a striking coincidence with the predictions of a new generalized Biot-Savart law which implies the spreading velocity of bound fields highly exceeding the velocity of light.

physics.class-ph