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1.
Chemistry ; 23(64): 16219-16230, 2017 Nov 16.
Artigo em Inglês | MEDLINE | ID: mdl-28763123

RESUMO

Mercury pollution threatens the environment and human health across the globe. This neurotoxic substance is encountered in artisanal gold mining, coal combustion, oil and gas refining, waste incineration, chloralkali plant operation, metallurgy, and areas of agriculture in which mercury-rich fungicides are used. Thousands of tonnes of mercury are emitted annually through these activities. With the Minamata Convention on Mercury entering force this year, increasing regulation of mercury pollution is imminent. It is therefore critical to provide inexpensive and scalable mercury sorbents. The research herein addresses this need by introducing low-cost mercury sorbents made solely from sulfur and unsaturated cooking oils. A porous version of the polymer was prepared by simply synthesising the polymer in the presence of a sodium chloride porogen. The resulting material is a rubber that captures liquid mercury metal, mercury vapour, inorganic mercury bound to organic matter, and highly toxic alkylmercury compounds. Mercury removal from air, water and soil was demonstrated. Because sulfur is a by-product of petroleum refining and spent cooking oils from the food industry are suitable starting materials, these mercury-capturing polymers can be synthesised entirely from waste and supplied on multi-kilogram scales. This study is therefore an advance in waste valorisation and environmental chemistry.


Assuntos
Mercúrio/química , Óleos de Plantas/química , Enxofre/química , Adsorção , Poluentes Atmosféricos/química , Varredura Diferencial de Calorimetria , Polímeros/síntese química , Polímeros/química , Reciclagem , Poluentes do Solo/química , Propriedades de Superfície , Termogravimetria , Poluentes Químicos da Água/química
2.
Langmuir ; 26(24): 18639-46, 2010 Dec 21.
Artigo em Inglês | MEDLINE | ID: mdl-20527831

RESUMO

Biomineralization is characterized by a high degree of control over the location, nature, size, shape, and orientation of the crystals formed. For many years, it has been widely believed that the exquisitely precise nature of crystal formation in biological tissues is the result of stereochemically specific interactions between growing crystals and extracellular matrix proteins. That is, the ability of many mineralized tissue proteins to adsorb to particular faces of biominerals has been attributed to a steric and electrical complementarity between periodic regions of the polypeptide chain and arrays of ions on the crystal face. In recent years, however, evidence has accumulated that many mineral-associated proteins lack periodic structure even when adsorbed to crystals. It also appears that protein-crystal interactions involve a general electrostatic attraction rather than arrays of complementary charges. In the present work, we review these studies and present some relevant new findings involving the mineral-modulating phosphoprotein osteopontin. Using molecular dynamics simulations, we show that the adsorption of osteopontin peptides to hydroxyapatite crystals does not involve a unique conformation of the peptide molecule, and that the adsorbed peptides are not aligned with rows of Ca(2+) ions on the crystal face. Further, we show that the interface between osteopontin peptides and calcium oxalate monohydrate crystals consists of peptide regions of high electronegativity and crystal faces of high electropositivity. Collectively, the above-mentioned studies suggest that interactions between mineral-modulating proteins and biologically relevant crystals are primarily electrostatic in nature, and that molecular disorder assists these proteins in forming multiple bonds with cations of the crystal face.


Assuntos
Eletrólitos/química , Eletrólitos/metabolismo , Minerais/metabolismo , Polímeros/química , Polímeros/metabolismo , Proteínas/metabolismo , Sequência de Aminoácidos , Animais , Humanos , Minerais/química , Simulação de Dinâmica Molecular , Dados de Sequência Molecular , Osteopontina/química , Osteopontina/metabolismo , Ligação Proteica , Proteínas/química , Eletricidade Estática
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