Literature DB >> 32254095

Au quantum dots engineered room temperature crystallization and magnetic anisotropy in CoFe2O4 thin films.

Sagar E Shirsath1, Xiaoxi Liu, M H N Assadi, Adnan Younis, Yukiko Yasukawa, Sumanta Kumar Karan, Ji Zhang, Jeonghun Kim, Danyang Wang, Akimitsu Morisako, Yusuke Yamauchi, Sean Li.   

Abstract

For the first time, this work presents a novel room temperature time-effective concept to manipulate the crystallization kinetics and magnetic responses of thin films grown on amorphous substrates. Conventionally, metal-induced crystallization is adopted to minimize the crystallization temperature of the upper-layer thin film. However, due to the limited surface area of the continuous metal under-layer, the degree of crystallization is insufficient and post-annealing is required. To expose a large surface area of the metal under-layer, we propose a simple and novel approach of using an Au nanodots array instead of a continuous metallic under-layer to obtain crystallization of upper-layer thin films. Spinel cobalt ferrite (CFO) thin film as a 'model' was deposited on an Au nano-dots array to realize this methodology. Our findings revealed that the addition of quantum-sized Au nano-dots as a metal under-layer dramatically enhanced the crystallization of the cobalt ferrite upper layer at room temperature. The appearance of major X-ray diffraction peaks with high intensity and well-defined crystallized lattice planes observed via transmission electron microscopy confirmed the crystallization of the CFO thin film deposited at room temperature on 4 nm-sized Au nano-dots. This crystallized CFO thin film exhibits 18-fold higher coercivity (Hc = 4150 Oe) and 4-fold higher saturation magnetization (Ms = 262 emu cm-3) compared to CFO deposited without the Au under-layer. The development of this novel concept of room-temperature crystallization without the aid of additives and solvents represents a crucial breakthrough that is highly significant for exploring the green and energy-efficient synthesis of a variety of oxide and metal thin films.

Entities:  

Year:  2018        PMID: 32254095     DOI: 10.1039/c8nh00278a

Source DB:  PubMed          Journal:  Nanoscale Horiz        ISSN: 2055-6756            Impact factor:   10.989


  2 in total

1.  Structural, mechanical, dielectric properties and magnetic interactions in Dy3+-substituted Co-Cu-Zn nanoferrites.

Authors:  R H Kadam; R B Borade; M L Mane; D R Mane; K M Batoo; Sagar E Shirsath
Journal:  RSC Adv       Date:  2020-07-27       Impact factor: 4.036

Review 2.  Mechanism of Producing Metallic Nanoparticles, with an Emphasis on Silver and Gold Nanoparticles, Using Bottom-Up Methods.

Authors:  Basil Raju Karimadom; Haya Kornweitz
Journal:  Molecules       Date:  2021-05-17       Impact factor: 4.411

  2 in total

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