维普中文期刊产品整合服务
5篇 您的检索式:作者名="Onur AR"
    题名 作者 年代 出处 被引量
1Evaluation of early atherosclerosis markers in patients with nonalcoholic fatty liver disease显示文摘Metin Kucukazman Naim Ata Bunyamin Yavuz Kursat Dal Omer Sen Onur S. Deveci Kadir Agladioglu Abdullah O. Yeniova Ya?ar Nazligul Derun T. Ertugrul 2013European Journal of Gastroenterology & Hepatology2013,,2:2
2Prostate‐specific membrane antigen‐based imaging in prostate cancer: Impact on clinical decision making process显示文摘Mehmet Onur Demirkol ?mer Acar Burcu U?ar Sultan Rana Ramazano?lu Ye?im Sa?l?can Tar?k Esen 2015Prostate2015,,7:1
3Association between Gene Polymorphism of Manganese Superoxide Dismutase and Prostate Cancer Risk显示文摘Ay?e Eken Onur Erdem Zorica Arsova‐Sarafinovska Cemal Akay Ahmet Sayal Nadica Matevska Ljubica Suturkova Koray Erten Ya?ar ?zg?k Aleksandar Dimovski Ahmet Aydin 2013J Biochem Mol Toxicol2013,,3:1
4Renal Leiomyoma: ultrasonography and computed tomography features with histopathologic correlation 显示文摘Onur MR Akin MA Onur AR 2013Eurasian J Med2013,45,5:1
5Functional Tough Hydrogels: Design, Processing, and Biomedical Applications显示文摘Hydrogels are high-water-content soft materials with widely tunable physicochemical properties,resembling soft tissues.Tremendous progress in engineering hydrogels with good biocompatibility,suitable bioactivities,and controlled geometries has made them promising candidates for broad applications.Nevertheless,conventional hydrogels usually suffer from weak mechanical properties,limiting their use in biomedical settings involving load-bearing and persistent mechanical deformations.Inspired by the extreme mechanical properties and multiscale hierarchical structures of biological tissues,mechanically robust tough hydrogels have been developed.Combining robust mechanical properties and other desired performance characteristics in functional tough hydrogels expands their opportunities in biomedical fields.This Account seeks to guide the readership regarding the recent progress in functional tough hydrogels with a focus on molecular/structural design and novel fabrications,particularly surrounding the works reported by our groups.Meanwhile,functional tough hydrogels for multiple biomedical applications are discussed,highlighting the underlying mechanisms governing their relevant applications.We begin by introducing the definition,measurements,and design principles of tough hydrogels and hydrogel adhesives in terms of soft materials mechanics.Various molecular and structural engineering approaches by building mechanical dissipation into stretchable hydrogels to realize stress homogenization or energy dissipation are exploited to fabricate tough hydrogels.Molecular engineering-based network architecture design of homogeneous hydrogels and structural engineering-based design of heterogeneous hydrogels are elaborated.The conventional energy-dissipation-based tough hydrogels are reinforced by the sacrificial bonds or components,leading to a substantial toughness reduction in subsequent loading cycles.To this end,new molecular designs,including highly entangled hydrogels and sliding-ring hydrogels,have been developed to resolve the toughness−hysteresis conflict.In addition,novel processing techniques,including salting out,freeze casting,and three-dimensional(bio)printing,are exploited to manipulate the multiscale structures and geometries for tough hydrogel fabrication.As some of the most actively studied materials in recent years,functional tough hydrogels are finding promising applications as bioadhesives/coatings,tissue-engineering scaffolds,soft robot/actuators,and bioelectronics interfaces.The development of tough bioadhesives/coatings lies in constructing strong interfacial linkages between the tough hydrogels and the underlying substrates,having broad applications in wound closure and drug delivery.Tough hydrogels have also been widely studied for use in tissue engineering and regenerative medicine,although the conflict of mechanical robustness−cellular function restricts their practical applications.The flexible and compliant tough hydrogels with stimuli-responsive shape shifting and pressure-triggered actuation make them good candidates as actuators and soft robots for biomedical devices dealing with soft tissues.Conductive tough hydrogels also have been widely exploited for utility in bioelectronics.In the end,we highlight the major challenges and emphasize the trends in developing the next-generation functional tough hydrogels for practical biomedical and medical applications.Xiao Kuang Mehmet Onur Arıcan Tao Zhou Xuanhe Zhao Yu Shrike Zhang 2023Accounts of Materials Research2023,4,2:0
返回顶部 每页显示:
共1页 首页 上一页 第1页 下一页 末页 /1 跳转

网站首页 | 关于我们 | 联系我们 | 产品服务 | 客服中心 | 广告服务 | 版权声明 | 网站联盟 | 友情链接 | 售卡网点

版权所有© 渝B2-20050021-1 渝公网安备 50019002500403号 违法和不良信息举报中心

互联网出版许可证 新出网证(渝)字10号 全国400电话 - 免长途话费