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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Periodic DFT Study of the Opening of Fructose and Glucose Rings and the Further Conversion of Fructose to Trioses Catalyzed by M-BEA (M = Sn, Ti, Zr, or Hf)
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Periodic DFT Study of the Opening of Fructose and Glucose Rings and the Further Conversion of Fructose to Trioses Catalyzed by M-BEA (M = Sn, Ti, Zr, or Hf)

机译:果糖和葡萄糖环的开度的周期性DFT研究以及M-BAS(M = Sn,Ti,Zr或Hf)催化的果糖的进一步转化为Triose

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摘要

Periodic density functional theory calculations with long-range corrections were used to analyze the opening of fructose and glucose rings catalyzed by metal-substituted beta zeolites (M-BEA). The reaction mechanisms were systematically analyzed on BEA substituted with tin (Sn), titanium (Ti), zirconium (Zr), and hafnium (Hf). Here, we proposed a mechanism for the conversion of fructose to dihydroxyacetone and glyceraldehyde and a novel mechanism for the glucose ring opening. The preferential site of substitution of the metals in BEA was reported. The adsorption energies of fructose and glucose through their different oxygen atoms on M-BEA were also reported. The transition state energies were calculated using the nudged elastic band and dimmer methods. Among the zeolites studied, Sn-BEA displays the lowest energies barriers for the conversion of the fructose to its trioses and for the glucose ring opening.
机译:使用远程校正的周期密度函数理论计算用于分析由金属取代的β沸石(M-BEA)催化的果糖和葡萄糖环的开口。 在被用锡(Sn),钛(Ti),锆(Zr)和铪(HF)取代的BEA上系统地分析反应机制。 在此,我们提出了一种用于将果糖转化为二羟基丙酮和甘油醛的机制以及葡萄糖环开口的新机制。 据报道,在BEA替代金属的优惠遗址。 还报道了通过其不同氧原子对M-BEA进行果糖和葡萄糖的吸附能量。 使用闪烁的弹性带和调光器方法计算过渡状态能。 在研究的沸石中,SN-BEA显示了用于将果糖转化为其Triose的最低能量障碍,并且用于葡萄环开口。

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