He Zidong, Liu Minmin, Liu Lin, Tong Guoxiu, Wu Wenhua, Wang Xiaojuan
College of Chemistry and Life Sciences, Key Laboratory of the Ministry of Education for Advanced Catalysis Materials, Zhejiang Normal University Jinhua 321004 People's Republic of China
RSC Adv. 2019 Jul 22;9(39):22644-22655. doi: 10.1039/c9ra04988f. eCollection 2019 Jul 17.
Strawberry-like Co/C/Fe/C core-shell hierarchical flowers (CSHFs) consisting of separated Fe/C nanoparticles (NPs) anchoring on a Co HF surface were prepared by decomposing Fe(CO) in the presence of Co HFs. Changing the decomposition temperature ( ) and Fe(CO) volume () could also facilely modulate the phase structure, surface morphology and composition of the products. The low and small helped form Co/C/Fe/C CSHFs with a strawberry-like plasmon surface. The diameter and interparticle spacing-dependent electromagnetic properties were investigated at 2-18 GHz. The interparticle-spacing-to-diameter ratio determines the plasmon resonance and coupling. The permittivity and permeability enhanced by strong plasmon resonance were exhibited by Co/C/Fe/C CSHFs formed at = 3-4 mL with the interparticle-spacing-to-diameter ratio of 1.36-0.76. The collective oscillation of the conduction band electrons and near field on the Co/C and Fe/C surfaces generated a surface plasmon resonance and coupling, which were responsible for significantly enhanced permittivity and permeability with negative values. In view of the synergistic effect of the enhanced permittivity and permeability, dual dielectric relaxations, dual magnetic resonances, high attenuation and good impedance matching, Co/C/Fe/C CSHFs with particle size of 110 ± 20-380 ± 100 nm and interparticle spacing of 150 ± 50 nm were excellent absorbers that feature strong absorption, broad bandwidth and light weight. An optimal reflection loss ( ) of -45.06 was found at 17.92 GHz for an absorber thickness of 1.6 mm, and the frequency range ( ≤ -20 dB, 99% absorption) was over 2-18 GHz. Our findings demonstrated that optimally designed plasmonic heterostructures must be fabricated to improve microwave absorption performances for future applications.
通过在Co HF存在下分解Fe(CO)制备了由锚定在Co HF表面的分离的Fe/C纳米颗粒(NP)组成的草莓状Co/C/Fe/C核壳分层花(CSHF)。改变分解温度()和Fe(CO)体积()也可以轻松调节产物的相结构、表面形态和组成。较低的和较小的有助于形成具有草莓状等离子体表面的Co/C/Fe/C CSHF。在2-18 GHz下研究了颗粒直径和颗粒间距相关的电磁特性。颗粒间距与直径之比决定了等离子体共振和耦合。在= 3-4 mL、颗粒间距与直径之比为1.36-0.76时形成的Co/C/Fe/C CSHF表现出由强等离子体共振增强的介电常数和磁导率。Co/C和Fe/C表面上导带电子的集体振荡和近场产生了表面等离子体共振和耦合,这导致介电常数和磁导率显著增强且为负值。鉴于增强的介电常数和磁导率的协同效应、双介电弛豫、双磁共振、高衰减和良好的阻抗匹配,粒径为110±20-380±100 nm且颗粒间距为150±50 nm的Co/C/Fe/C CSHF是具有强吸收、宽带宽和轻质特点的优异吸收剂。对于厚度为1.6 mm的吸收剂,在17.92 GHz处发现最佳反射损耗()为-45.06,并且频率范围(≤ -20 dB,99%吸收)超过2-18 GHz。我们的研究结果表明,必须制造出优化设计的等离子体异质结构以改善未来应用的微波吸收性能。