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<dc:title>Mesostructured metal oxide-based nanocomposites as&#xd;
sorbents for H2S removal from syngas coal gasification</dc:title>
<dc:creator>MUREDDU, MAURO</dc:creator>
<dc:subject>Nanocomposites sorbents</dc:subject>
<dc:subject>sorbenti nanocompositi</dc:subject>
<dc:subject>Settore CHIM/02 - Chimica Fisica</dc:subject>
<dc:description>Desulphurization of gas phase sulphur compounds has been receiving dramatic attention since&#xd;
hazardous, corrosive, and toxic gases that cause environmental damages (especially acid rain) and&#xd;
industrial challenges (i.e., corrosion of equipment and deactivation of catalysts).&#xd;
This dissertation presents results of R&amp;D efforts to develop efficient MeOx/SBA-15-based sorbents&#xd;
for H2S removal in view of possible applications in hydrogen purification, air pollution control, and deep&#xd;
desulphurization of fossil fuels. It is precisely in the latter topic that the research project was born. The&#xd;
production of power, fuels and chemicals in most countries is predominantly based on oil and, to a minor&#xd;
extent, on natural gas. It is well-known that the reserves of both of these fuels are limited to a range of&#xd;
40, 60 years. On the contrary, coal is a widely available fossil fuel, and it is expected to last for about&#xd;
230 years. The imminent oil production limitations and the longer availability of coal, the wish to improve&#xd;
the security of the energy supply, and the possibility to reduce greenhouse gas emissions by means of&#xd;
carbon capture and sequestration (CCS) are sufficient motivations to increase the use of this resource.&#xd;
Integrated Gasification Combined Cycle (IGCC) process is a high efficiency power generation technology&#xd;
which gasifies coal to generate the fuel (syngas) for a high efficiency gas turbine. A key challenge for&#xd;
producing clean power or hydrogen via gasification is cost effective purification of the sour syngas.&#xd;
There are many commercial treatment techniques that are used to remove H2S, but their disadvantage is&#xd;
that hot coal gas must be cooled down near to ambient temperature for desulphurization. The cooling&#xd;
equipment required, and the need to reheat the clean syngas before its use in a gas turbine result in&#xd;
economic and thermodynamic penalties that decrease the efficiency of a gasification plant. It is for this&#xd;
reason that hot gas desulphurization technique has attracted more and more attention due to the fact&#xd;
that it can reduce H2S down to 100 ppm level and avoid heat loss. Mid-temperature desulphurization is&#xd;
achieved by the use of solid sorbents such as oxides of those metals that form stable sulphides, based on&#xd;
the non-catalytic reaction between a metal oxide and hydrogen sulphide. The optimum desulphurization&#xd;
temperature has been recommended in the range of 300 to 450 °C, also in according to the more&#xd;
favourable thermodynamic equilibrium of sulphur compounds removal. To accomplish this task, Zinc&#xd;
oxide- and Iron oxide-based materials have been successfully employed for decades in different domains&#xd;
of the chemical industry. The pure metal oxides used as sorbents, however, suffer from evaporation, loss&#xd;
in the surface area and porosity due to sintering and mechanical disintegration that affect their&#xd;
performance and life time adversely. With the purpose of overcoming this problem and to improve their&#xd;
performance, metal oxides can be confined into a support, where under such conditions the materials&#xd;
are stable. The main properties required for support materials are inertness, high surface area, large&#xd;
pores and good mechanical strength.&#xd;
The thesis reports some simple and versatile routes which can be proposed to prepare a great&#xd;
variety of MeOx/SBA-15 composites where the mesostructured SBA-15 silica, a high-surface area (up to&#xd;
1000 m2/g) material, with 6–7 nm-wide regular channels and thick (3–4 nm) pore walls has been used as&#xd;
efficient and stable support. MeOx active phase, formed inside the mesochannels, can reach the maximum&#xd;
size of 6-7 nm physically imposed by the pore diameter. Such a structure provides an ideal reactor&#xd;
where the mesopores act as channels for the transport of reactant. As a consequence, enhancement of&#xd;
the active phase reactivity might be expected. The proposed “Two-solvents” incipient impregnation&#xd;
method is easily reproducible and easy to scale up. Furthermore, this method should provide, at least in&#xd;
principle, ideal systems to be compared, and therefore to understand how the active phase nature&#xd;
influence their performance.&#xd;
For the first time, a careful comparative study on the effect of the different nature of the&#xd;
nanostructured MeOx (Me = Zn, Fe) dispersed into a mesostructured silica matrix (SBA-15) on the H2S&#xd;
removal performance is carried out.&#xd;
The behaviour of the MeOx/SBA-15 composites in the removal of H2S is investigated in a fixed-bed&#xd;
reactor and compared with that of an unsupported ZnO commercial sorbent. The morphological,&#xd;
structural, and textural features of fresh, sulphided, and regenerated sorbents have been assessed by a&#xd;
multi-technique approach, including the study of the possible interactions between the guest oxide and&#xd;
the host silica support. Furthermore, the sorption-desorption behaviour, which is commonly justified only&#xd;
on the basis of the different nature of the active phase and of the textural features (surface area and&#xd;
pore volume), is discussed also considering the morphology and the crystallinity of the active phase.&#xd;
In the literature, to our best knowledge, no one have reported similar correlations. For this reason&#xd;
this work can give an important contribution to improve the basic knowledge in the field of sorbents for&#xd;
gas-removal.</dc:description>
<dc:date>2015-03-13</dc:date>
<dc:type>info:eu-repo/semantics/doctoralThesis</dc:type>
<dc:identifier>http://hdl.handle.net/11584/266555</dc:identifier>
<dc:language>eng</dc:language>
<dc:relation>numberofpages:261</dc:relation>
<dc:rights>info:eu-repo/semantics/openAccess</dc:rights>
<dc:publisher>Università degli Studi di Cagliari</dc:publisher>
<dc:rights>license:Non specificato</dc:rights>
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