Laser-induced Photochemistry in Continuous Flow Reactors
Laser-induced Photochemistry in Continuous Flow Reactors
批准号:
EP/L022168/1
负责人:
Richard Curry
金额:
$38.01万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2014
资助国家:
英国
项目状态:
已结题
起止时间:
2014 至 --
中文摘要
光化学是上个世纪化学中一些最有趣的进步背后的研究领域。这种化学方法使分子能够高度选择性地激活,然后可以驱动分子进行反应和进行特定的化学合成。光驱动的化学反应也是植物通过光合作用利用太阳能量的基础。此外,半导体中选择性的太阳光吸收可以进行广泛的、通常是高度非选择性的光催化间歇化学反应,如氧化和还原反应。尽管我们对光化学有所了解,但这门学科并没有对精细化工和制造业产生重大影响。在一定程度上,这与调整/停止光化学反应以使它们不会产生不必要的副反应有关,也与将实验室光化学反应扩大到工业规模过程相关的困难。在这项研究中,我们将研究在高价值的精细化学品和纳米材料制造中使用可调光化学的途径,为工业规模过程的可伸缩性提供令人信服的证据。此外,我们将利用光的特殊特性来实现特定的目标,例如通过使用光的偏振来增加产品的特异性。所有反应都将在连续流动的反应环境中进行,这将允许我们调整入射激光、停留时间、温度、压力、混合湍流、浓度等的路径长度和吸收截面。此外,作为高级阶段,我们将能够使用该设备使用超临界二氧化碳(高压和中温)进行反应,这是一种清洁的溶剂,将允许更高的混合性与反应气体,如氢。有针对性地使用光在连续流动过程中选择性地激活溶剂或特定分子的独特组合(从一开始就具有高度可伸缩性的潜力)以前从未证明过,并包含可持续的化学原理。在这项提案的时间范围内,我们将展示概念验证光引导制造精细有机络合物,包括手性分子(具有内置“利手性”的分子),以及将我们的概念转化为工业所需的表面功能化无机纳米材料。我们拥有一支平衡的团队,其中包括有机化学和激发态光-物质相互作用、无机合成和化学工程方面的专业知识。特别是,这包括最近在中试装置(公斤/小时)上首次展示的超临界连续流处理,随着手性光化学的最新进展,使我们的建议具有非凡的及时性。我们的工作将对工业界和学术界产生重大影响。英国政府商业、创新和技能部(BIS)最近的一份评估报告称,英国化学品行业是全球第七大生产商,年销售额约为560亿GB,占英国制造业总量的12%。[1]目标是发展该行业,使其能够继续在国际上竞争。为此,报告指出,除了获得技能和培训外,还需要新技术的创新和知识转让。该项目直接满足了这些需求。具体地说,通过在英国建立概念验证,并通过与英国行业的接触,我们将提供一个平台,使他们能够继续在国际上竞争。[1]英国商业、创新和技能部2010年12月发布的《先进制造业增长审查框架》报告。骨灰盒10/1297。
英文摘要
Photochemistry is an area of research behind some of the most interesting advances in chemistry over the last century. This approach to chemistry enables the highly selective activation of molecules which can then be driven to react and undergo specific chemical syntheses. Photo-driven chemical reactions are also the basis upon which plants can harness the suns energy via photosynthesis. Furthermore, selective solar light absorption in semiconductors can allow a wide range of often highly unselective photocatalytic batch chemistries to be conducted such as oxidation and reduction reactions. Despite our knowledge of photochemistry, the subject has failed to have a significant impact on the fine chemical and manufacturing industries. In part, this is related to the difficulty in tuning/stopping photochemical reactions so that they do not give unwanted side reactions and also the difficulties associated with scaling-up laboratory photochemical reactions into industrial scale processes.In this study, we will investigate routes for utilising tuneable photochemistry in the high value manufacture of fine chemicals and nanomaterials, providing compelling evidence of scalability towards industrial scale processes. Furthermore, we will harness special properties of light to achieve specific goals, for example by using the polarisation of light to add product specificity. All reactions will be conducted in a continuous flow reaction environment which will allow us to tune path lengths and absorption cross-sections for incident lasers, residence times, temperatures, pressures, turbulence of mixing, concentrations etc. Furthermore, as an advanced stage we will be able to use the apparatus for carrying out reactions using supercritical carbon dioxide (high pressure and moderate temperature) which is a clean solvent that will allow substantially higher miscibility's with reactive gases such as hydrogen. The unique combination of the targeted use of light to selectively activate either a solvent or specific molecules within a continuous flow process (which has the potential to be highly scalable from the outset) has never been demonstrated before and encompasses sustainable chemistry principles. Within the timescale of this proposal we will demonstrate proof-of-concept light-directed manufacture of fine organic complexes, including chiral molecules (molecules with a built-in 'handedness'), and surface functionalised inorganic nanomaterials, required to translate our concept to industry. We have a balanced team that includes expertise in organic chemistry and excited state light-mater interactions, inorganic synthesis and chemical engineering. In particular, this includes the recent first demonstration of supercritical continuous flow processing on a pilot-scale plant (kg/hour) which, with recent advances in chiral photochemistry, makes our proposal of exceptional timeliness. The impact of our work will be highly significant to both industry and academia. A recent Government Department for Business, Innovation & Skills (BIS) review reported that 'The UK Chemicals sector is the seventh largest producer globally with annual sales of around £56bn, representing 12% of all UK manufacturing'.[1] The aim is to grow this sector and enable it to continue to compete internationally. To do this the report states that innovation and knowledge transfer of new technologies is required along with access to skills and training. This project directly addresses these needs. Specifically by establishing the proof-of-concept within the UK and through engagement with UK-based industry we will provide a platform to enable them to continue to compete internationally.[1] Department for Business, Innovation and Skills report 'Growth Review Framework for Advanced Manufacturing' December 2010. URN 10/1297.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1002/anie.201502390
发表时间:
2015-06
期刊:
Angewandte Chemie
影响因子:
--
作者:
[M. Prabhath;J. Romanova;R. Curry;S. Silva;P. Jarowski]
通讯作者:
M. Prabhath;J. Romanova;R. Curry;S. Silva;P. Jarowski
DOI:
10.1016/j.jpowsour.2016.06.128
发表时间:
2016-09-15
期刊:
JOURNAL OF POWER SOURCES
影响因子:
9.2
作者:
[Johnson, Ian D., Blagovidova, Ekaterina, Darr, Jawwad A.]
通讯作者:
Darr, Jawwad A.
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