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首页> 外文期刊>Scientific reports. >Formation of carbyne-like materials during low temperature pyrolysis of lignocellulosic biomass: A natural resource of linear sp carbons
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Formation of carbyne-like materials during low temperature pyrolysis of lignocellulosic biomass: A natural resource of linear sp carbons

机译:木质纤维素生物质的低温热解过程中类卡宾物质的形成:线性sp碳的天然资源

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The exploration, understanding and potential applications of ‘Carbyne’, the one-dimensional sp allotrope of carbon, have been severely limited due to its extreme reactivity and a tendency for highly exothermic cross-linking. Due to ill-defined materials, limited characterization and a lack of compelling definitive evidence, even the existence of linear carbons has been questioned. We report a first-ever investigation on the formation of carbyne-like materials during low temperature pyrolysis of biobased lignin, a natural bioresource. The presence of carbyne was confirmed by detecting acetylenic –C≡C– bonds in lignin chars using NMR, Raman and FTIR spectroscopies. The crystallographic structure of this phase was determined as hexagonal: a?=?6.052??, c?=?6.96?? from x-ray diffraction results. HRSEM images on lignin chars showed that the carbyne phase was present as nanoscale flakes/fibers (~10?nm thick) dispersed in an organic matrix and showed no sign of overlapping or physical contact. These nanostructures did not show any tendency towards cross-linking, but preferred to branch out instead. Overcoming key issues/challenges associated with their formation and stability, this study presents a novel approach for producing a stable condensed phase of sp-bonded linear carbons from a low-cost, naturally abundant, and renewable bioresource.
机译:一维碳同素异形体“ Carbyne”的探索,理解和潜在应用由于其极强的反应性和高度放热的交联趋势而受到严重限制。由于不确定的材料,有限的表征以及缺乏令人信服的权威证据,甚至对线性碳的存在也提出了质疑。我们报道了对基于生物素的木质素(一种天然生物资源)进行低温热解过程中类似碳炔材料形成的首次研究。通过使用NMR,拉曼光谱和FTIR光谱法检测木质素炭中的炔基–C≡C–键,证实了炔烃的存在。该相的晶体结构确定为六边形:α=6.052Ω,c =6.96Ω。从X射线衍射结果。木质素炭上的HRSEM图像显示,卡宾相以分散在有机基质中的纳米级薄片/纤维(约10?nm厚)形式存在,没有重叠或物理接触的迹象。这些纳米结构没有显示出任何交联的趋势,而是优选分支出来。克服了与它们的形成和稳定性相关的关键问题/挑战,这项研究提出了一种新颖的方法,可以从低成本,自然丰富且可再生的生物资源中生产稳定的sp键合线性碳的冷凝相。

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