The poor bonding performance between aqueous adhesives represented by melamine-urea formaldehyde(MUF)resins and reed straw hinders their applications in the field of non-wood-based panels.Multi-hydroxyl polymers are h...The poor bonding performance between aqueous adhesives represented by melamine-urea formaldehyde(MUF)resins and reed straw hinders their applications in the field of non-wood-based panels.Multi-hydroxyl polymers are highly reactive and are often used as crosslinkers.This study fabricated a resin with a strengthened crosslinked structure by combining a multi-hydroxyl polymer and MUF resin prepolymer.The reed particleboard was prepared by using this resin as an adhesive and reed stalk as the matrix.The results show that neighboring molecules combined to form C–O–C bonds that strengthened the cross-linked structure of the resin.In addition,the viscosity of the resin was increased,and a continuous adhesive layer on the surface of reed particles was formed,which slowed the penetration of reed particles.The adhesive layer significantly improved the mechanical properties of the reed particleboard.The maximum modulus of rupture(MOR),modulus of elasticity(MOE),and internal bonding strength(IB)of the reed particleboard were 33.53,4126,and 0.79 MPa,respectively.The IB of the board was 3.3 times higher than that of the reed particleboard prepared with a conventional MUF resin.Reed straw is a non-wood biomass material that has the advantage of sustainable development and may replace woodbased materials to produce particleboard.This resin-prepared reed particleboard is expected to be used in areas such as custom furniture and engineering materials.展开更多
先利用羟基化多壁碳纳米管(MWCNTs-OH)与纸纤维制备了复合纤维纸(MWCNTs-OHP),然后将该复合纤维纸夹在两层PP隔膜之间组装三明治结构隔膜(PP@MWCNTs-OHP@PP)并应用于锂硫电池.利用透射电子显微镜(TEM)、扫描电子显微镜(SEM)、红外光谱...先利用羟基化多壁碳纳米管(MWCNTs-OH)与纸纤维制备了复合纤维纸(MWCNTs-OHP),然后将该复合纤维纸夹在两层PP隔膜之间组装三明治结构隔膜(PP@MWCNTs-OHP@PP)并应用于锂硫电池.利用透射电子显微镜(TEM)、扫描电子显微镜(SEM)、红外光谱和元素能谱分析(EDS)等对材料进行结构和性能表征.电化学测试结果表明,PP@MWCNTs-OHP@PP三明治隔膜有效提高了锂硫电池的性能.在0.1C倍率下,电池首次放电比容量达到1532 m A·h/g,活性物质的利用率达到91.5%.在1C倍率下充放电循环500周后,放电比容量依然维持516 m A·h/g,每周循环衰减率为0.028%,库仑效率保持在96.4%以上.充放电倍率从3C减小到0.1C后,放电比容量从336 m A·h/g恢复到820 m A·h/g,显示出极佳的倍率性能.展开更多
基金supported by the Hunan Province Science and Technology Major Project[2021NK1050]Strategic Research and Consulting Project of the Chinese Academy of Engineering:Research on Green and Low-Carbon Technology Innovation Strategy of Wood-Based Panel Industry[2022-XY-62]+1 种基金Changsha Science and Technology Project[kq2004096]Hunan Provincial Technical Innovation Platform and Talent Program in Science and Technology[2016TP1013].
文摘The poor bonding performance between aqueous adhesives represented by melamine-urea formaldehyde(MUF)resins and reed straw hinders their applications in the field of non-wood-based panels.Multi-hydroxyl polymers are highly reactive and are often used as crosslinkers.This study fabricated a resin with a strengthened crosslinked structure by combining a multi-hydroxyl polymer and MUF resin prepolymer.The reed particleboard was prepared by using this resin as an adhesive and reed stalk as the matrix.The results show that neighboring molecules combined to form C–O–C bonds that strengthened the cross-linked structure of the resin.In addition,the viscosity of the resin was increased,and a continuous adhesive layer on the surface of reed particles was formed,which slowed the penetration of reed particles.The adhesive layer significantly improved the mechanical properties of the reed particleboard.The maximum modulus of rupture(MOR),modulus of elasticity(MOE),and internal bonding strength(IB)of the reed particleboard were 33.53,4126,and 0.79 MPa,respectively.The IB of the board was 3.3 times higher than that of the reed particleboard prepared with a conventional MUF resin.Reed straw is a non-wood biomass material that has the advantage of sustainable development and may replace woodbased materials to produce particleboard.This resin-prepared reed particleboard is expected to be used in areas such as custom furniture and engineering materials.
文摘先利用羟基化多壁碳纳米管(MWCNTs-OH)与纸纤维制备了复合纤维纸(MWCNTs-OHP),然后将该复合纤维纸夹在两层PP隔膜之间组装三明治结构隔膜(PP@MWCNTs-OHP@PP)并应用于锂硫电池.利用透射电子显微镜(TEM)、扫描电子显微镜(SEM)、红外光谱和元素能谱分析(EDS)等对材料进行结构和性能表征.电化学测试结果表明,PP@MWCNTs-OHP@PP三明治隔膜有效提高了锂硫电池的性能.在0.1C倍率下,电池首次放电比容量达到1532 m A·h/g,活性物质的利用率达到91.5%.在1C倍率下充放电循环500周后,放电比容量依然维持516 m A·h/g,每周循环衰减率为0.028%,库仑效率保持在96.4%以上.充放电倍率从3C减小到0.1C后,放电比容量从336 m A·h/g恢复到820 m A·h/g,显示出极佳的倍率性能.