2 resultados para State-Dependent Immigration

em Glasgow Theses Service


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This research looks into forms of state crime taking place around the U.S.-Mexico border. On the Mexican side of the border violent corruption and criminal activities stemming from state actors complicity with drug trafficking organisations has produced widespread violence and human casualty while forcing many to cross the border legally or illegally in fear for their lives. Upon their arrival on the U.S. side of the border, these individuals are treated as criminal suspects. They are held in immigration detention facilities, interrogated and categorised as inadmissible ‘economic migrants’ or ‘drug offenders’ only to be denied asylum status and deported to dangerous and violent zones in Mexico. These individuals have been persecuted and victimised by the state during the 2007-2012 counter narcotic operations on one side of the border while criminalised and punished by a categorizing anti-immigration regime on the other side of the border. This thesis examines this border crisis as injurious actions against border residents have been executed by the states under legal and illegal formats in violation of criminal law and human rights conventions. The ethnographic research uses data to develop a nuanced understanding of individuals’ experiences of state victimisation on both sides of the border. In contributing to state crime scholarship it presents a multidimensional theoretical lens by using organised crime theoretical models and critical criminology concepts to explain the role of the state in producing multiple insecurities that exclude citizens and non-citizens through criminalisation processes.

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Hydrogen is considered as an appealing alternative to fossil fuels in the pursuit of sustainable, secure and prosperous growth in the UK and abroad. However there exists a persisting bottleneck in the effective storage of hydrogen for mobile applications in order to facilitate a wide implementation of hydrogen fuel cells in the fossil fuel dependent transportation industry. To address this issue, new means of solid state chemical hydrogen storage are proposed in this thesis. This involves the coupling of LiH with three different organic amines: melamine, urea and dicyandiamide. In principle, thermodynamically favourable hydrogen release from these systems proceeds via the deprotonation of the protic N-H moieties by the hydridic metal hydride. Simultaneously hydrogen kinetics is expected to be enhanced over heavier hydrides by incorporating lithium ions in the proposed binary hydrogen storage systems. Whilst the concept has been successfully demonstrated by the results obtained in this work, it was observed that optimising the ball milling conditions is central in promoting hydrogen desorption in the proposed systems. The theoretical amount of 6.97 wt% by dry mass of hydrogen was released when heating a ball milled mixture of LiH and melamine (6:1 stoichiometry) to 320 °C. It was observed that ball milling introduces a disruption in the intermolecular hydrogen bonding network that exists in pristine melamine. This effect extends to a molecular level electron redistribution observed as a function of shifting IR bands. It was postulated that stable phases form during the first stages of dehydrogenation which contain the triazine skeleton. Dehydrogenation of this system yields a solid product Li2NCN, which has been rehydrogenated back to melamine via hydrolysis under weak acidic conditions. On the other hand, the LiH and urea system (4:1 stoichiometry) desorbed approximately 5.8 wt% of hydrogen, from the theoretical capacity of 8.78 wt% (dry mass), by 270 °C accompanied by undesirable ammonia and trace amount of water release. The thermal dehydrogenation proceeds via the formation of Li(HN(CO)NH2) at 104.5 °C; which then decomposes to LiOCN and unidentified phases containing C-N moieties by 230 °C. The final products are Li2NCN and Li2O (270 °C) with LiCN and Li2CO3 also detected under certain conditions. It was observed that ball milling can effectively supress ammonia formation. Furthermore results obtained from energetic ball milling experiments have indicated that the barrier to full dehydrogenation between LiH and urea is principally kinetic. Finally the dehydrogenation reaction between LiH and dicyandiamide system (4:1 stoichiometry) occurs through two distinct pathways dependent on the ball milling conditions. When ball milled at 450 RPM for 1 h, dehydrogenation proceeds alongside dicyandiamide condensation by 400 °C whilst at a slower milling speed of 400 RPM for 6h, decomposition occurs via a rapid gas desorption (H2 and NH3) at 85 °C accompanied by sample foaming. The reactant dicyandiamide can be generated by hydrolysis using the product Li2NCN.