CAREER: Designing Elastic Hydrogen-bonded Crosslinked Porous Organic Materials
CAREER: Designing Elastic Hydrogen-bonded Crosslinked Porous Organic Materials
批准号:
1844920
负责人:
Chenfeng Ke
金额:
$64.81万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-04-01 至 2024-02-29
中文摘要
非技术摘要多孔有机框架是碳基的、具有限定的纳米尺寸孔的轻质结晶材料。这些材料在分子和能量储存、环境修复以及重要化学中间体和产物的分离方面具有应用前景。与多孔有机框架的发展相关的关键挑战是选择性分子吸附和分离的高结晶度与长期使用的高化学稳定性之间的权衡。在材料研究部门的固态和材料化学计划以及刺激竞争研究的既定计划(EPSCoR)的共同支持下,该CAREER项目解决了这一挑战,并开发了一系列高度有序,化学稳定和弹性的多孔有机材料。通过一种新的合成方法,弹性成为多孔有机框架的一个特征,使它们能够通过打破氢键来动态扩展其结构,并通过重新形成临时键来恢复其原始晶体形式。这些弹性材料有望实现超过现有多孔有机材料的高吸附容量和选择性。此外,将活性物质纳入这些材料中,使下一代环境和能源相关应用能够促进国家繁荣。通过综合教育和外展活动,柯教授和他的研究小组使抽象的科学概念更容易为各级学生和公众所理解,并展示材料科学如何解决全球性问题。具体来说,这是通过(1)设计一个名为“穿越纳米空间”的互动演示来说明与多孔材料相关的基本概念,(2)指导高中和本科生开发易于复制的3D打印机和材料;以及(3)发展一个积极学习的班级,让学生,特别是那些来自代表性不足的群体的学生,技术摘要通过这个由材料研究部的固态和材料化学计划以及刺激竞争研究的既定计划(EPSCoR)共同支持的CAREER项目,设计和合成了下一代弹性多孔有机材料。特别是,这类材料具有高结晶度,允许精确的结构-性能分析,并赋予它们高化学稳定性,用于化学储存,分离和潜在的催化等应用。通过氢键定向组装和单晶光交联相结合的方法,构建了一系列氢键交联有机骨架材料。该项目重点从三个方面深入了解HCOF材料的结构与性能关系:首先,HCOF及其分子前体的晶体结构可以揭示传统多孔有机框架中难以获得的原子级结构信息。其次,柔性交联剂的整合为HCOF提供了独特的弹性,这使得它们能够通过断裂和重整氢键来动态地调整其3D结构,从而基于不同的基底-框架相互作用来增加客体结合能力和选择性。第三,降低HCOF中的交联度提供了一系列具有更大弹性和新型纳米级形态的部分交联的框架,这是使用传统多孔有机框架的合成策略无法获得的。这种方法还使HCOF能够掺入与传统有机骨架材料不相容的催化活性部分,支持下一代环境和能源相关应用。研究工作丰富了该项目的教育和推广活动,旨在使抽象的科学概念更容易为各级学生和公众所理解。这是通过(1)设计一个名为“穿越纳米空间”的互动演示来说明与多孔材料相关的基本概念,(2)指导高中和本科生开发易于复制的3D打印机和材料;以及(3)发展一个积极学习的班级,让学生,特别是那些来自代表性不足的群体的学生,该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Non-technical abstractPorous organic frameworks are carbon-based, light-weight crystalline materials with defined nano-sized pores. Such materials are promising for applications in molecular and energy storage, environmental remediation, as well as separation of important chemical intermediates and products. The key challenge associated with the development of porous organic frameworks is the tradeoff between high crystallinity for selective molecular adsorption and separation, and high chemical stability for long-term usage. With joint support from the Solid State and Materials Chemistry program in the Division of Materials Research and the Established Program to Stimulate Competitive Research (EPSCoR), this CAREER project addresses this challenge and develops a new family of highly ordered, chemically stable, and elastic porous organic materials. Through a new synthesis approach elasticity becomes a feature of porous organic frameworks, allowing them to dynamically expand their structure by breaking hydrogen bonds, and recover to their original crystalline form by reforming the temporary bonds. These elastic materials are expected to achieve high adsorption capacity and selectivity over the existing porous organic materials. Furthermore, incorporating active species into these materials enables next-generation environmental and energy-related applications to advance national prosperity. Through the integrated education and outreach activities Prof. Ke and his research group make abstract scientific concepts more accessible to students at all levels as well as the general public, and show how material science can address global problems. Specifically, this is done by (1) designing an interactive demonstration named "Traveling Through Nano Space" to illustrate fundamental concepts related to porous materials, (2) mentoring high-school and undergraduate students to develop an easy-to-replicate 3D printer and materials; and (3) developing an active-learning class to engage students, especially those from underrepresented groups, in their STEM education.Technical AbstractWith this CAREER project, jointly supported by the Solid State and Materials Chemistry program in the Division of Materials Research and the Established Program to Stimulate Competitive Research (EPSCoR), the next-generation of elastic porous organic materials are designed and synthesized. In particular, this class of materials has high crystallinity, allowing for precise structure-property analysis and endowing them with high chemical stability for applications such as chemical storage, separation and potentially catalysis. A series of hydrogen-bonded crosslinked organic framework (HCOF) materials are constructed through the combination of hydrogen bond directed assembly and photo-crosslinking in single crystals. The project provides an in-depth understanding of the structure-property relationship of HCOF materials by focusing on three aspects: First, the crystal structures of HCOFs and their molecular precursors can reveal atomic-level structural information that are difficult to obtain in conventional porous organic frameworks. Second, integration of flexible crosslinkers provides HCOFs with unique elasticity, which enables them to dynamically adjust their 3D architecture by breaking and reforming hydrogen bonds, thereby increasing the guest binding capacity and selectivity based on different substrate-framework interactions. Third, decreasing the degree of crosslinking in HCOFs provides a range of partially crosslinked frameworks with greater elasticity and novel nanoscale morphologies, which are not accessible using the synthetic strategies of traditional porous organic frameworks. This approach also enables HCOFs to incorporate catalytically active moieties that are not compatible with traditional organic framework materials, supporting next-generation environmental and energy-related applications. The research efforts enrich the educational and outreach activities of this project, which aim to make abstract scientific concepts more accessible to students at all levels as well as the general public. This is achieved by (1) designing an interactive demonstration named "Traveling Through Nano Space" to illustrate fundamental concepts related to porous materials, (2) mentoring high-school and undergraduate students to develop an easy-to-replicate 3D printer and materials; and (3) developing an active-learning class to engage students, especially those from underrepresented groups, in their STEM education.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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DOI:
10.1021/acs.cgd.2c00217
发表时间:
2022-04
期刊:
Crystal Growth & Design
影响因子:
--
作者:
[Mingshi Zhang;Jayanta Samanta;Chenfeng Ke]
通讯作者:
Mingshi Zhang;Jayanta Samanta;Chenfeng Ke
DOI:
10.1021/accountsmr.2c00173
发表时间:
2022-10-27
期刊:
ACCOUNTS OF MATERIALS RESEARCH
影响因子:
14.6
作者:
[Samanta,Jayanta, Zhang,Yunjia, Ke,Chenfeng]
通讯作者:
Ke,Chenfeng
DOI:
10.1016/j.chempr.2021.11.014
发表时间:
2021-12
期刊:
Chem
影响因子:
23.5
作者:
[Jayanta Samanta;Rick W. Dorn;Wenlin Zhang;Xuanfeng Jiang;Mingshi Zhang;R. Staples;Aaron J. Rossini;Chenfeng Ke]
通讯作者:
Jayanta Samanta;Rick W. Dorn;Wenlin Zhang;Xuanfeng Jiang;Mingshi Zhang;R. Staples;Aaron J. Rossini;Chenfeng Ke
DOI:
10.1021/jacs.9b05232
发表时间:
2019-07-10
期刊:
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
影响因子:
15
作者:
[Jiang, Xuanfeng, Cui, Xunzhe, Ke, Chenfeng]
通讯作者:
Ke, Chenfeng
A Crosslinked Ionic Organic Framework for Efficient Iodine and Iodide Remediation in Water
用于有效修复水中碘和碘化物的交联离子有机框架
DOI:
10.1002/anie.202214189
发表时间:
2022
期刊:
Angewandte Chemie International Edition
影响因子:
--
作者:
[Zhang, Mingshi, Samanta, Jayanta, Atterberry, Benjamin A., Staples, Richard, Rossini, Aaron J., Ke, Chenfeng]
通讯作者:
Ke, Chenfeng
共 6 条
Collaborative Research: DMREF: Closed-Loop Design of Polymers with Adaptive Networks for Extreme Mechanics
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批准号:2413579
-
项目类别:Standard Grant
-
资助金额:$42.11万
-
财政年份:2024
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负责人:Chenfeng Ke
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依托单位:
CAREER: Designing Elastic Hydrogen-bonded Crosslinked Porous Organic Materials
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批准号:2413574
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项目类别:Continuing Grant
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资助金额:$64.81万
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财政年份:2024
-
负责人:Chenfeng Ke
-
依托单位:
Collaborative Research: DMREF: Closed-Loop Design of Polymers with Adaptive Networks for Extreme Mechanics
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批准号:2323727
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项目类别:Standard Grant
-
资助金额:$42.11万
-
财政年份:2023
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负责人:Chenfeng Ke
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依托单位:
海外基金