Hengdong Ren, Chensi Zhou, Ka Wang, Ximing Zhang, Lei Feng, Wenqing Wei, Yuqing Sun, Yukang Liu, Jun Dai, Xiaobing Xu*, Zhiyong Zhang* and Xinglong Wu*,
{"title":"碳纳米管封装α-Fe2O3中电子积累增强界面极化的研究","authors":"Hengdong Ren, Chensi Zhou, Ka Wang, Ximing Zhang, Lei Feng, Wenqing Wei, Yuqing Sun, Yukang Liu, Jun Dai, Xiaobing Xu*, Zhiyong Zhang* and Xinglong Wu*, ","doi":"10.1021/acsnano.5c0207210.1021/acsnano.5c02072","DOIUrl":null,"url":null,"abstract":"<p >Interface polarization (one of the slow polarizations) is considered the primary mechanism driving microwave absorption (MA), but limitations in material composition and microstructure design often lead to weak interfacial polarization relaxation. In this work, we developed an interesting heterostructure consisting of carbon nanotube-encapsulated α-Fe<sub>2</sub>O<sub>3</sub> nanocolumns (CNTs@α-Fe<sub>2</sub>O<sub>3</sub>). The curvature effects of CNTs induce a built-in electric field between CNTs and α-Fe<sub>2</sub>O<sub>3</sub> nanocolumns, facilitating effective interface polarization. Under microwave irradiation, electron accumulation at the interfaces, driven by the energy-level mismatch between the two materials, further strengthens interface polarization, leading to a highly efficient MA performance. This heterostructured material achieves a minimum reflection loss of −74.1 dB at a thickness of 1.8 mm and an effective absorption bandwidth (reflection loss ≤ −10 dB) of 5.2 GHz (11.9 ∼ 17.1 GHz) at a thickness of only 1.5 mm. X-ray photoelectron spectroscopy and Raman scattering show a distinct blueshift in the Fe 2p binding energy and the A<sub>1g</sub> mode energy (exclusively associated with Fe atom vibrations), suggesting substantial charge transfer and redistribution at the interface associated with enhanced interface polarization. This work provides insights into interface polarization through the strategic design of energy levels and materials.</p>","PeriodicalId":21,"journal":{"name":"ACS Nano","volume":"19 17","pages":"16869–16876 16869–16876"},"PeriodicalIF":16.0000,"publicationDate":"2025-04-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Enhancing Interfacial Polarization through Electron Accumulation in Carbon Nanotube-Encapsulated α-Fe2O3 for Highly Efficient Microwave Absorption\",\"authors\":\"Hengdong Ren, Chensi Zhou, Ka Wang, Ximing Zhang, Lei Feng, Wenqing Wei, Yuqing Sun, Yukang Liu, Jun Dai, Xiaobing Xu*, Zhiyong Zhang* and Xinglong Wu*, \",\"doi\":\"10.1021/acsnano.5c0207210.1021/acsnano.5c02072\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Interface polarization (one of the slow polarizations) is considered the primary mechanism driving microwave absorption (MA), but limitations in material composition and microstructure design often lead to weak interfacial polarization relaxation. In this work, we developed an interesting heterostructure consisting of carbon nanotube-encapsulated α-Fe<sub>2</sub>O<sub>3</sub> nanocolumns (CNTs@α-Fe<sub>2</sub>O<sub>3</sub>). The curvature effects of CNTs induce a built-in electric field between CNTs and α-Fe<sub>2</sub>O<sub>3</sub> nanocolumns, facilitating effective interface polarization. Under microwave irradiation, electron accumulation at the interfaces, driven by the energy-level mismatch between the two materials, further strengthens interface polarization, leading to a highly efficient MA performance. This heterostructured material achieves a minimum reflection loss of −74.1 dB at a thickness of 1.8 mm and an effective absorption bandwidth (reflection loss ≤ −10 dB) of 5.2 GHz (11.9 ∼ 17.1 GHz) at a thickness of only 1.5 mm. X-ray photoelectron spectroscopy and Raman scattering show a distinct blueshift in the Fe 2p binding energy and the A<sub>1g</sub> mode energy (exclusively associated with Fe atom vibrations), suggesting substantial charge transfer and redistribution at the interface associated with enhanced interface polarization. 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Enhancing Interfacial Polarization through Electron Accumulation in Carbon Nanotube-Encapsulated α-Fe2O3 for Highly Efficient Microwave Absorption
Interface polarization (one of the slow polarizations) is considered the primary mechanism driving microwave absorption (MA), but limitations in material composition and microstructure design often lead to weak interfacial polarization relaxation. In this work, we developed an interesting heterostructure consisting of carbon nanotube-encapsulated α-Fe2O3 nanocolumns (CNTs@α-Fe2O3). The curvature effects of CNTs induce a built-in electric field between CNTs and α-Fe2O3 nanocolumns, facilitating effective interface polarization. Under microwave irradiation, electron accumulation at the interfaces, driven by the energy-level mismatch between the two materials, further strengthens interface polarization, leading to a highly efficient MA performance. This heterostructured material achieves a minimum reflection loss of −74.1 dB at a thickness of 1.8 mm and an effective absorption bandwidth (reflection loss ≤ −10 dB) of 5.2 GHz (11.9 ∼ 17.1 GHz) at a thickness of only 1.5 mm. X-ray photoelectron spectroscopy and Raman scattering show a distinct blueshift in the Fe 2p binding energy and the A1g mode energy (exclusively associated with Fe atom vibrations), suggesting substantial charge transfer and redistribution at the interface associated with enhanced interface polarization. This work provides insights into interface polarization through the strategic design of energy levels and materials.
期刊介绍:
ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.