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首页> 外文期刊>Catalysis science & technology >Spinel copper-iron-oxide magnetic nanoparticles with cooperative Cu(i) and Cu(ii) sites for enhancing the catalytic transformation of 1,2-propanediol to lactic acid under anaerobic conditions
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Spinel copper-iron-oxide magnetic nanoparticles with cooperative Cu(i) and Cu(ii) sites for enhancing the catalytic transformation of 1,2-propanediol to lactic acid under anaerobic conditions

机译:尖晶石copper-iron-oxide磁性纳米颗粒与合作铜(i)和铜(ii)网站提高催化转化1, 2-propanediol乳酸在厌氧条件

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摘要

The aerobic catalytic oxidation of 1,2-propanediol (PDO) over non-noble metal (e.g. Cu) based catalysts usually suffers serious C3 product dissociation at high temperature, thus showing low lactic acid (LA) selectivity. Here, an alternative anaerobic catalysis strategy over spinel copper-iron-oxide magnetic nanoparticles (CuFeOx MNs) with the coexistence of Cu(i) and Cu(ii) dual sites is developed for the catalytic transformation of PDO to LA with a quantitative yield of co-product H-2 in basic aqueous solution. The absence of O-2 is beneficial for enhancing LA production in comparison with the presence of O-2. The synergy between Cu(i) and Cu(ii) sites in CuFeOx MNs is vital for improving the catalytic performance as compared to Cu2O or CuO catalysts with Cu(i) or Cu(ii) sites alone. Cu1Fe1Ox MNs with a Cu/Fe mole ratio of 1/1 exhibit 94.5% LA selectivity and 72.6% PDO conversion at 160 degrees C for 8 h. Experimental results and DFT calculations suggest that the spinel CuFeOx MN based catalytic PDO transformation follows a favorable pathway of PDO -> hydroxyacetone -> lactaldehyde -> lactic acid for LA production. In addition to the catalytic PDO transformation, the use of CuFeOx MNs can be extended to favor high activity and selectivity in the catalytic transformation of glycerol to LA (98.5% selectivity) and ethylene glycol to glyceric acid (97.8% selectivity). This work highlights the design of an alternative non-noble metal-based CuFeOx MN catalyst for efficiently catalyzing the transformation of bio-based polyols into value-added carboxylic acids.
机译:1的需氧催化氧化,2-propanediol(PDO) /非贵金属(例如铜)催化剂通常遭受严重的C3产品离解高温,从而显示乳酸(LA)选择性低。选择厌氧催化策略尖晶石copper-iron-oxide磁性纳米颗粒(CuFeOx MNs)铜(i)的共存铜(ii)双重催化网站开发PDO的变换与定量拉产生的副产品,氢在基本的水解决方案。加强生产相比0 2的存在。铜(ii)网站CuFeOx MNs改善至关重要催化性能比Cu2O或措催化剂和铜(i)或铜(ii)网站。Cu1Fe1Ox MNs铜/铁摩尔比为1/1PDO展览LA选择性94.5%和72.6%在160摄氏度转换8 h。实验结果和DFT计算表明,尖晶石CuFeOx锰催化PDO转换是PDO的有利途径- >丙酮醇- > lactaldehyde - >乳酸为生产。PDO转换,使用CuFeOx MNs扩展到支持较高的活性和选择性在甘油的催化转化(选择性98.5%)和乙二醇甘油酸(97.8%选择性)。强调了另一种非贵金属的设计金属CuFeOx MN有效的催化剂催化生物的变换多元醇为增值羧酸。

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