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The Entropies of Adsorbed Molecules

机译:吸附分子的熵

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摘要

Adsorbed molecules are involved in many reactions on solid surface that are of great technological importance. As such, there has been tremendous effort worldwide to learn how to predict reaction rates and equilibrium constants for reactions involving adsorbed molecules. Theoretical calculation of both the rate and equilibrium constants for such reactions requires knowing the entropy and enthalpy of the adsorbed molecule. While much effort has been devoted to measuring and calculating the enthalpies of well-defined adsorbates, few measurements of the entropies of adsorbates have been reported. We present here a new way to determine the standard entropies of adsorbed molecules (S_(ad)~0) on single crystal surfaces from temperature programmed desorption data, prove its accuracy by comparison to entropies measured by equilibrium methods, and apply it to published data to extract new entropies. Most importantly, when combined with reported entropies, we find that at high coverage, they linearly track the entropy of the gas-phase molecule at the same temperature (T), such that S_(ad)~0(T) = 0.70 S_(gas)~0(T) - 3.3R (R = the gas constant), with a standard deviation of only 2R over a range of SOR. These entropies, which are ~2/3 of the gas, are huge compared to most theoretical predictions. This result can be extended to reliably predict prefactors in the Arrhenius rate constant for surface reactions involving such species, as proven here for desorption.
机译:吸附的分子参与了许多在固体表面上具有重要技术意义的反应。因此,世界范围内付出了巨大的努力来学习如何预测涉及吸附分子的反应的反应速率和平衡常数。对于此类反应的速率常数和平衡常数的理论计算都需要知道吸附分子的熵和焓。尽管已投入大量精力来测量和计算明确定义的吸附物的焓,但几乎没有关于吸附物熵的测量的报道。我们在这里提出一种新方法,可以从温度编程的解吸数据确定单晶表面上吸附分子的标准熵(S_(ad)〜0),通过与通过平衡方法测得的熵进行比较证明其准确性,并将其应用于已公开数据提取新的熵。最重要的是,当与报告的熵组合时,我们发现在高覆盖率下,它们在相同温度(T)下线性跟踪气相分子的熵,从而S_(ad)〜0(T)= 0.70 S_(气体)〜0(T)-3.3R(R =气体常数),在SOR范围内标准偏差仅为2R。与大多数理论预测相比,这些熵约为气体的2/3。可以扩展该结果,以可靠地预测涉及此类物质的表面反应的Arrhenius速率常数的前置因子,如此处解吸所证明的。

著录项

  • 来源
    《Journal of the American Chemical Society》 |2012年第43期|18109-18115|共7页
  • 作者单位

    Department of Chemistry, University of Washington, Seattle, Washington 98195-1700, United States;

    Department of Chemistry, University of Washington, Seattle, Washington 98195-1700, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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