点击左上角“MDPI化学材料”关注我们,为您推送更多最新资讯。
Nanomaterials
文献清单
纳米纤维材料,是指直径处于纳米尺度 (通常为1~1000纳米) 的纤维状材料。它具有极大的比表面积,这一特性赋予了它出色的吸附能力,在过滤、催化等领域发挥关键作用。比如在空气过滤中,能高效拦截微小颗粒。同时,纳米纤维还具备良好的力学性能,可承受一定外力而不断裂。在生物医学领域,因其与细胞尺寸相近,能为细胞生长提供适宜环境,促进组织修复与再生。此外,它还展现出独特的光学和电学性能,在传感器、电子器件等方面有着广泛应用前景,是一种极具潜力的新型材料。
还在为筛选文献而发愁?别急,这份“纳米纤维材料”方向的文献清单,也许能为你提供灵感!
文章 1
High Energy Density of Ball-Milled Fluorinated Carbon Nanofibers as Cathode in Primary Lithium Batteries
作为锂电池正极材料的高能量密度球磨氟化碳纳米纤维
识别二维码
阅读英文原文
Colin, M.; Petit, E.; Guérin, K.; Dubois, M. High Energy Density of Ball-Milled Fluorinated Carbon Nanofibers as Cathode in Primary Lithium Batteries. Nanomaterials 2024, 14, 404.
文章 2
Cellulose Sulfate Nanofibers for Enhanced Ammonium Removal
用于增强脱除氨的纤维素硫酸盐纳米纤维
识别二维码
阅读英文原文
Johnson, K.I.; Borges, W.; Sharma, P.R.; Sharma, S.K.; Chang, H.-Y.; Abou-Krisha, M.M.; Alhamzani, A.G.; Hsiao, B.S. Cellulose Sulfate Nanofibers for Enhanced Ammonium Removal. Nanomaterials 2024, 14, 507.
文章 3
A Room Temperature Trimethylamine Gas Sensor Based on Electrospinned Molybdenum Oxide Nanofibers/Ti3C2Tx MXene Heterojunction
基于电纺丝氧化钼纳米纤维/Ti3C2Tx MXene异质结的室温三甲胺气体传感器
识别二维码
阅读英文原文
Ma, S.; Guo, J.; Zhang, H.; Shao, X.; Zhang, D. A Room Temperature Trimethylamine Gas Sensor Based on Electrospinned Molybdenum Oxide Nanofibers/Ti3C2Tx MXene Heterojunction. Nanomaterials 2024, 14, 537.
文章 4
Fully Printed Cellulose Nanofiber–Ag Nanoparticle Composite for High-Performance Humidity Sensor
纳米固体/液体酸催化剂用于甘油酯化:将负债转化为资产的关键
识别二维码
阅读英文原文
Won, M.; Jung, M.; Kim, J.; Kim, D.-S. Fully Printed Cellulose Nanofiber–Ag Nanoparticle Composite for High-Performance Humidity Sensor. Nanomaterials2024, 14, 343.
文章 5
Preparation and Peculiar Magnetic Properties at Low Temperatures of La1.85Sr0.15CuO4 Nanofibers
La1.85Sr0.15CuO4纳米纤维的制备及其低温磁性能
识别二维码
阅读英文原文
Long, Y.-Z. Preparation and Peculiar Magnetic Properties at Low Temperatures of La1.85Sr0.15CuO4 Nanofibers. Nanomaterials 2024, 14, 361.
文章 6
Hybrid-Mechanism Synergistic Flexible Nb2O5@WS2@C Carbon Nanofiber Anode for Superior Sodium Storage
混合机制协同柔性Nb2O5@WS2@C碳纳米纤维阳极实现卓越钠存储
识别二维码
阅读英文原文
Zhao, Y.; Feng, Z.; Tan, Y.; Deng, Q.; Yao, L. Hybrid-Mechanism Synergistic Flexible Nb2O5@WS2@C Carbon Nanofiber Anode for Superior Sodium Storage. Nanomaterials 2024, 14, 631.
文章 7
Electrospun Fenoprofen/Polycaprolactone @ Tranexamic Acid/Hydroxyapatite Nanofibers as Orthopedic Hemostasis Dressings
电纺非诺洛芬/聚己内酯@氨甲环酸/羟基磷灰石纳米纤维作为骨科止血敷料
识别二维码
阅读英文原文
Huang, C.; Wang, M.; Yu, S.; Yu, D.-G.; Bligh, S.W.A. Electrospun Fenoprofen/Polycaprolactone @ Tranexamic Acid/Hydroxyapatite Nanofibers as Orthopedic Hemostasis Dressings. Nanomaterials 2024, 14, 646.
文章 8
Luminescent/Temperature-Sensing Properties of Multifunctional Rare-Earth Upconversion Kevlar Nanofiber Composite under 1550 nm
1550 nm多功能稀土上转换芳纶纳米纤维复合材料的发光/温度传感特性
识别二维码
阅读英文原文
Li, J.; Xu, S.; Liu, Y.; Cao, S. Luminescent/Temperature-Sensing Properties of Multifunctional Rare-Earth Upconversion Kevlar Nanofiber Composite under 1550 nm. Nanomaterials 2024, 14, 740.
文章 9
Na3MnTi(PO4)3/CNanofiber Free-Standing Electrode for Long-Cycling-Life Sodium-Ion Batteries
用于长循环寿命钠离子电池的Na3MnTi(PO4)3/C纳米纤维独立电极
识别二维码
阅读英文原文
Conti, D.M.; Urru, C.; Bruni, G.; Galinetto, P.; Albini, B.; Berbenni, V.; Girella, A.; Capsoni, D. Na3MnTi(PO4)3/C Nanofiber Free-Standing Electrode for Long-Cycling-Life Sodium-Ion Batteries. Nanomaterials 2024, 14, 804.
文章 10
Synergistic Effect of ZIF-8 and Pt-Functionalized NiO/In2O3 Hollow Nanofibers for Highly Sensitive Detection of Formaldehyde
ZIF-8与Pt功能化NiO/In2O3空心纳米纤维的协同效应对甲醛实现高灵敏检测
识别二维码
阅读英文原文
Zhu, L.; Wang, Z.; Wang, J.; Liu, J.; Zhao, W.; Zhang, J.; Yan, W. Synergistic Effect of ZIF-8 and Pt-Functionalized NiO/In2O3 Hollow Nanofibers for Highly Sensitive Detection of Formaldehyde. Nanomaterials 2024, 14, 841.
文章 11
Carbon Nanofiber Membranes Loaded with MXene@g-C3N4: Preparation and Photocatalytic Property
负载MXene@g-C3N4碳纳米纤维膜的制备及光催化性能
识别二维码
阅读英文原文
Lou, C.-W.; Xie, M.-M.; Yang, Y.-D.; Wang, H.-Y.; Wang, Z.-K.; Zhang, L.; Hsieh, C.-T.; Liu, L.-Y.; Lin, M.-C.; Li, T.-T. Carbon Nanofiber Membranes Loaded with MXene@g-C3N4: Preparation and Photocatalytic Property. Nanomaterials 2024, 14, 896.
文章 12
The Incorporated Drug Affects the Properties of Hydrophilic Nanofibers
掺入药物对亲水性纳米纤维性能的影响
识别二维码
阅读英文原文
The Incorporated Drug Affects the Properties of Hydrophilic Nanofibers. Nanomaterials 2024, 14, 949.
文章 13
Development of Polyvinyl Alcohol (PVA) Nanofibers Containing Cationic Lipid/siRNA Complexes via Electrospinning: The Impact of PVA Characterization
利用静电纺丝开发含阳离子脂质/siRNA复合物的聚乙烯醇 (PVA) 纳米纤维:PVA特性的影响
识别二维码
阅读英文原文
Kanamori, M.; Hara, K.; Yamazoe, E.; Ito, T.; Tahara, K. Development of Polyvinyl Alcohol (PVA) Nanofibers Containing Cationic Lipid/siRNA Complexes via Electrospinning: The Impact of PVA Characterization. Nanomaterials 2024, 14, 1083.
文章 14
Electrospinning and Partial Etching Behaviors of Core–Shell Nanofibers Directly Electrospun on Mesh Substrates for Application in a Cover-Free Compact Air Filter
用于无盖紧凑型空气过滤器的、在网状基底上直接静电纺丝制备的核壳纳米纤维的静电纺丝及部分蚀刻行为
识别二维码
阅读英文原文
Lee, Y.; Jung, S.; Yun, J.S. Electrospinning and Partial Etching Behaviors of Core–Shell Nanofibers Directly Electrospun on Mesh Substrates for Application in a Cover-Free Compact Air Filter. Nanomaterials 2024, 14, 1152.
文章 15
Efficient Formaldehyde Gas Sensing Performance via Promotion of Oxygen Vacancy on In-Doped LaFeO3 Nanofibers
通过促进In掺杂LaFeO3纳米纤维上的氧空位实现高效的甲醛气体传感性能
识别二维码
阅读英文原文
Zhu, L.; Zhang, J.; Wang, J.; Liu, J.; Zhao, W.; Yan, W. Efficient Formaldehyde Gas Sensing Performance via Promotion of Oxygen Vacancy on In-Doped LaFeO3 Nanofibers. Nanomaterials 2024, 14, 1595.
文章 16
Hierarchical Heterojunctions of Metal Sulfide WS2 Nanosheets/Metal Oxide In2O3 Nanofibers for an Efficient Detection of Formaldehyde
用于高效检测甲醛的金属硫化物WS2纳米片/金属氧化物In2O3纳米纤维的分层异质结
识别二维码
阅读英文原文
Zhu, L.; Zhang, J.; Wang, J.; Liu, J.; Yan, W. Hierarchical Heterojunctions of Metal Sulfide WS2 Nanosheets/Metal Oxide In2O3 Nanofibers for an Efficient Detection of Formaldehyde. Nanomaterials 2024, 14, 1702.
精选视频
往期回顾
河南大学鞠婕教授团队:吸湿驱动材料的研究进展 | MDPI Nanomaterials
版权声明:
*本文由MDPI中国办公室编辑翻译撰写,文中涉及到的论文翻译部分,为译者在个人理解之上的概述与转达,论文详情及准确信息请参考英文原文。本文遵守 CC BY 4.0 许可 (https://creativecommons.org/licenses/by/4.0/)。如需转载,请于公众号后台留言咨询。
由于微信订阅号推送规则更新,建议您将“MDPI化学材料”设为星标,便可在消息栏中便捷地找到我们,及时了解最新开放出版动态资讯!
点击左下方“阅读原文”,进入期刊主页。
喜欢今天的内容?不如来个 "三连击" ☞【分享,点赞,转发】