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Resubmission novel bionanocatalysts and nanomagnets from solutions and metal bearing wastes

Resubmission novel bionanocatalysts and nanomagnets from solutions and metal bearing wastes
从溶液和含金属废物中重新提交新型生物纳米催化剂和纳米磁体
批准号:
BB/E003788/1
负责人:
Lynne Macaskie
金额:
$35.45万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2006
资助国家:
英国
项目状态:
已结题
起止时间:
2006 至 --

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中文摘要
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英文摘要
The property of matter changes at the nanoscale, because atoms at the surface of a crystal have different properties from those buried within it. Nanocrystals have a large proportion of surface atoms so these revealed properties could be utilised, including enhanced catalytic/magnetic properties. However they are unstable during manufacture and are difficult to make because they want to agglomerate. When this happens their properties are lost. Agglomeration can be prevented by using molecular 'cradles'. This is difficult and expensive: the cradle must shield each nanoparticle from its neighbours, but allow some area to remain exposed. Bacterial surfaces provide good cradles. Metallic nanoparticles are made by bacterial enzyme action, and cradling by local biomolecules as they grow, individually, on bacterial surfaces. Examples are precious metals (PMs: Pd,Pt,Au) and iron (oxides). PMs are reduced by bacteria to the metallic state. Fe oxides exist in various mineral forms which are made and chosen via combinations of bacterial action, and chemical reactions in the bacterially-influenced 'reaction space'. The net results are supported catalysts & magnets with special properties attributable to their nanosize. Traditionally PMs make good chemical catalysts, and Fe-oxides make good magnets, but at the nanoscale these distinctions blur: palladium is ferromagnetic while Fe oxides have catalytic activity. Even better, hybrid PM/Fe nanoparticles are BETTER in both applications than single metals but nobody has attempted to bio-direct the synthesis of hybrid nanoparticles (called bimetallic or trimetallic clusters). The instability of nanoparticles makes this very difficult indeed using chemistry. Bacteria can make mixed metal nanoparticles from mixed solutions and they can even do this by scavenging the metals from liquid wastes. Indeed, some bacteria-bound trimetallics were found to have better catalytic properties than mono- nanocrystals. This may be due to the intruding metal forcing changes in the crystal structure so that 'buried' atoms are persuaded to think that they are more like surface ones. Similar changes could also be brought about by application of electromagnetic fields (EMF; dielectric processing) during and following crystal synthesis but this has not been tried before. A combination of stable nanoparticles on bacteria plus dielectric processing could make a new generation of supernanoparticles, far in advance of what we already have. We aim to define the potential for making completely new materials using a portfolio of our bacteria as the catalysts for nanoparticle synthesis, and support. Some bacteria reduce PMs, some make ferric oxides, some do both. We will biomanufacture nanoscale chemical catalysts (PMs), nanomagnets (Fe), swop to get PM-magnets and Fe-catalysts and then combine them to make novel PM/Fe hybrids. We will relate what we make to how we make it, i.e the bacterial activity/surface properties and the crystals made. The industrial Partner will dielectric-process the bionanoparticles to further enhance their properties and a collaboration with Cardiff will use electron microscopy to be able to see what we have made, down to the atomic level. We will do example catalytic and magnetic testing of the bionanomaterials in the Universities against commercial standard materials. Mainly we will use pure metal solutions and bacterial strains for fundamental study. Finally, with the best bacteria, we will briefly look at example novel bionanomaterials made from mining wastes (Fe) and industrial wastes (Pd/Au) since we know these can work even better. We will use multifunctional bacteria and also some enhanced by mutations as appropriate
期刊论文(10)
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DOI: 10.1016/j.hydromet.2008.05.029
发表时间: 2008-11-01
期刊: HYDROMETALLURGY
影响因子: 4.7
作者: [Creamer, N. J., Deplanche, K., Macaskie, L. E.]
通讯作者: Macaskie, L. E.
DOI: 10.1016/j.apcatb.2013.09.045
发表时间: 2014-04-05
期刊: APPLIED CATALYSIS B-ENVIRONMENTAL
影响因子: 22.1
作者: [Depanche, K., Bennett, J. A., Macaskie, L. E.]
通讯作者: Macaskie, L. E.
DOI: 10.1007/s11244-011-9691-0
发表时间: 2011-11-01
期刊: TOPICS IN CATALYSIS
影响因子: 3.6
作者: [Deplanche, K., Mikheenko, I. P., Macaskie, L. E.]
通讯作者: Macaskie, L. E.
DOI: 10.1016/j.apcatb.2013.04.022
发表时间: 2013-08-01
期刊: APPLIED CATALYSIS B-ENVIRONMENTAL
影响因子: 22.1
作者: [Bennett, J. A., Mikheenko, I. P., Macaskie, L. E.]
通讯作者: Macaskie, L. E.
Towards circularity: Upconversion of biowaste from primary bioprocess into two high value product streams
  • 批准号:
    BB/T010118/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $1.23万
  • 财政年份:
    2019
  • 负责人:
    Lynne Macaskie
  • 依托单位:
Biogenic metal phosphates: Low cost, high capacity, stable 'lockups' for the removal of radionuclides from groundwater and decontamination solutions
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    NE/L012537/1
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    Research Grant
  • 资助金额:
    $17.82万
  • 财政年份:
    2014
  • 负责人:
    Lynne Macaskie
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Beyond biorecovery: environmental win-win by biorefining of metallic wastes into new functional materials (B3)
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    NE/L014076/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $81.3万
  • 财政年份:
    2014
  • 负责人:
    Lynne Macaskie
  • 依托单位:
Biogeochemistry, Bioextraction and Biorecovery of Rare Earth Elements.
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    NE/L002256/1
  • 项目类别:
    Research Grant
  • 资助金额:
    $8.64万
  • 财政年份:
    2013
  • 负责人:
    Lynne Macaskie
  • 依托单位:
国内基金
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novel-miR75靶向OPR2,CA2和STK基因调控人参真菌胁迫响应的分子机制研究
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    青年科学基金项目
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    30.00万元
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    2023
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海南广藿香Novel17-GSO1响应p-HBA调控连作障碍的分子机制
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白术多糖通过novel-mir2双靶向TRADD/MLKL缓解免疫抑制雏鹅的胸腺程序性坏死
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    32102747
  • 项目类别:
    青年科学基金项目(C类)
  • 资助金额:
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