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The two minerals borickyite and delvauxite CaFe3+4(PO4,SO4)2(OH)8•4-6H2O have the same formula. Are the minerals identical or different? The minerals borickyite and delvauxite have been characterised by Raman spectroscopy. The minerals are related to the minerals diadochite and destinezite. Both minerals are amorphous. Delvauxite appears to vary in crystallinity from amorphous to semi-crystalline. The minerals are often X-ray non-diffracting. The minerals are found in soils and may be described as ‘colloidal’ minerals. Vibrational spectroscopy enables an assessment of the molecular structure of borickyite and delvauxite. Bands are assigned to phosphate and sulphate stretching and bending modes. Multiple water bending and stretching modes imply that non-equivalent water molecules in the structure exist with different hydrogen bond strengths. The two minerals show differing spectra and must be considered as different minerals.

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Grenada’s New Jewel Movement, led by Maurice Bishop, was the first indigenous political grouping in the history of the English-speaking Caribbean to overthrow an existing government by armed force. Yet most of the four and a half years of the Revolution (1979-83) were characterized by considerable popular support for the new People’s Revolutionary Government before it came to it’s tragic, unexpected and shocking end in October 1983. Social, economic and political change seems possible in the 1970s and ‘80s. People in newly decolonizing countries were encouraged by the beginnings of the Non-Aligned Movement of Third World nations demanding new international economic order that would win them some economic justice after the ravages of colonialism. People also saw that some radical regimes, such as that led by Michael Manley in Jamaica and the Sandinistas in Nicaragua, were articulating and implementing basic rights that held the promise of countering the social and political oppression that they had endured throughout the centuries of colonial history. A majority of Grenadians committed themselves to fighting by the side of the People’s Revolutionary Government for such new goals. This chapter will analyse how the Grenada Revolution reconceptualised the education, planned new goals, and implemented bold new educational policies. It will discuss the extent to which the government and people were able to reshape education as a tool for national reconstruction and the raising of national consciousness.

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The Brain Research Institute (BRI) uses various types of indirect measurements, including EEG and fMRI, to understand and assess brain activity and function. As well as the recovery of generic information about brain function, research also focuses on the utilisation of such data and understanding to study the initiation, dynamics, spread and suppression of epileptic seizures. To assist with the future focussing of this aspect of their research, the BRI asked the MISG 2010 participants to examine how the available EEG and fMRI data and current knowledge about epilepsy should be analysed and interpreted to yield an enhanced understanding about brain activity occurring before, at commencement of, during, and after a seizure. Though the deliberations of the study group were wide ranging in terms of the related matters considered and discussed, considerable progress was made with the following three aspects. (1) The science behind brain activity investigations depends crucially on the quality of the analysis and interpretation of, as well as the recovery of information from, EEG and fMRI measurements. A number of specific methodologies were discussed and formalised, including independent component analysis, principal component analysis, profile monitoring and change point analysis (hidden Markov modelling, time series analysis, discontinuity identification). (2) Even though EEG measurements accurately and very sensitively record the onset of an epileptic event or seizure, they are, from the perspective of understanding the internal initiation and localisation, of limited utility. They only record neuronal activity in the cortical (surface layer) neurons of the brain, which is a direct reflection of the type of electrical activity they have been designed to record. 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