Synthesis and Characterization of New MAX Phase Alloys

Synthesis and Characterization of New MAX Phase Alloys
Author: Aurelija Mockutė
Publisher:
Total Pages: 79
Release: 2014
Genre:
ISBN: 9789175194073

Den här avhandlingen handlar om en grupp material som kallas MAX-faser. M står för en övergångsmetall (t.ex. Ti, Cr, Nb, Sc), A för ett element från grupp A i det periodiska systemet (t.ex. Al, Si, Ge, Ga), och X står för C eller N. Atomer av tre sådana olika element staplas i en struktur bestående av rena atomlager, t.ex. M-X-M-A-M-X-M-A. Ti2AlC, Cr2AlC, Ti3SiC2 och Ti4AlN3 är några exempel av mer än 60 hittills upptäckta MAX-faser. Det extra spännande med MAX-faser är att de kombinerar metalliska och keramiska egenskaper. De leder alltså ström och värme, men tål samtidigt höga temperaturer och de står emot oxidation.

Synthesis and characterization of magnetic nanolaminated carbides

Synthesis and characterization of magnetic nanolaminated carbides
Author: Andrejs Petruhins
Publisher: Linköping University Electronic Press
Total Pages: 78
Release: 2018-03-15
Genre:
ISBN: 917685342X

MAX phases are a group of nanolaminated ternary carbides and nitrides, with a composition expressed by the general formula Mn+1AXn (?? = 1 ? 3), where M is a transition metal, A is an A-group element, and X is carbon and/or nitrogen. MAX phases have attracted interest due to their unique combination of metallic and ceramic properties, related to their inherently laminated structure of a transition metal carbide (Mn+1Xn) layer interleaved by an A-group metal layer. This Thesis explores synthesis and characterization of magnetic MAX phases, where the A-group element is gallium (Ga). Due to the low melting point of Ga (T = 30 °C), conventional thin film synthesis methods become challenging, as the material is in liquid form at typical process temperatures. Development of existing methods has therefore been investigated, for reliable/reproducible synthesis routes, including sputtering from a liquid target, and resulting high quality material. Routes for minimizing trial-and-error procedures during optimization of thin film synthesis have also been studied, allowing faster identification of optimal deposition conditions and a simplified transfer of essential deposition parameters between different deposition systems. A large part of this Thesis is devoted towards synthesis of MAX phase thin films in the Cr-Mn-Ga-C system. First, through process development, thin films of Cr2GaC were deposited by magnetron sputtering. The films were epitaxial, however with small amount of impurity phase Cr3Ga, as confirmed by X-ray diffraction (XRD) measurements. The film structure was confirmed by scanning transmission electron microscopy (STEM) and the composition by energy dispersive X-ray spectroscopy (EDX) inside the TEM. Inspired by predictive ab initio calculations, the new MAX phase Mn2GaC was successfully synthesized in thin film form by magnetron sputtering. Structural parameters and magnetic properties were analysed. The material was found to have two magnetic transitions in the temperature range 3 K to 750 K, with a first order transition at around 214 K, going from non-collinear antiferromagnetic state at lower temperature to an antiferromagnetic state at higher temperature. The Neél temperature was determined to be 507 K, changing from an antiferromagnetic to a paramagnetic state. Above 800 K, Mn2GaC decomposes. Furthermore, magnetostrictive, magnetoresistive and magnetocaloric properties of the material were iv determined, among which a drastic change in lattice parameters upon the first magnetic transition was observed. This may be of interest for magnetocaloric applications. Synthesis of both Cr2GaC and Mn2GaC in thin film form opens the possibility to tune the magnetic properties through a solid solution on the transition metal site, by alloying the aforementioned Cr2GaC with Mn, realizing (Cr1-xMnx)2GaC. From a compound target with a Cr:Mn ratio of 1:1, thin films of (Cr0.5Mn0.5)2GaC were synthesized, confirmed by TEM-EDX. Optimized structure was obtained by deposition on MgO substrates at a deposition temperature of 600 ºC. The thin films were phase pure and of high structural quality, allowing magnetic measurements. Using vibrating sample magnetometry (VSM), it was found that (Cr0.5Mn0.5)2GaC has a ferromagnetic component in the temperature range from 30 K to 300 K, with the measured magnetic moment at high field decreasing by increasing temperature. The remanent moment and coercive field is small, 0.036 ?B, and 12 mT at 30 K, respectively. Using ferromagnetic resonance spectroscopy, it was also found that the material has pure spin magnetism, as indicated by the determined spectroscopic splitting factor g = 2.00 and a negligible magnetocrystalline anisotropy energy. Fuelled by the recent discoveries of in-plane chemically ordered quaternary MAX phases, so called i-MAX phases, and guided by ab initio calculations, new members within this family, based on Cr and Mn, were synthesized by pressureless sintering methods, realizing (Cr2/3Sc1/3)2GaC and (Mn2/3Sc1/3)2GaC. Their structural properties were determined. Through these phases, the Mn content is the highest obtained in a bulk MAX phase to date. This work has further developed synthesis processes for sputtering from liquid material, for an optimized route to achieve thin films of controlled composition and a high structural quality. Furthermore, through this work, Mn has been added as a new element in the family of MAX phase elements. It has also been shown, that alloying with different content of Mn gives rise to varying magnetic properties in MAX phases. As a result of this Thesis, it is expected that the MAX phase family can be further expanded, with more members of new compositions and new properties.

MAX Phases

MAX Phases
Author: Michel W. Barsoum
Publisher: John Wiley & Sons
Total Pages: 436
Release: 2013-11-13
Genre: Technology & Engineering
ISBN: 3527654607

In this comprehensive yet compact monograph, Michel W. Barsoum, one of the pioneers in the field and the leading figure in MAX phase research, summarizes and explains, from both an experimental and a theoretical viewpoint, all the features that are necessary to understand and apply these new materials. The book covers elastic, electrical, thermal, chemical and mechanical properties in different temperature regimes. By bringing together, in a unifi ed, self-contained manner, all the information on MAX phases hitherto only found scattered in the journal literature, this one-stop resource offers researchers and developers alike an insight into these fascinating materials.

2D Metal Carbides and Nitrides (MXenes)

2D Metal Carbides and Nitrides (MXenes)
Author: Babak Anasori
Publisher: Springer Nature
Total Pages: 534
Release: 2019-10-30
Genre: Technology & Engineering
ISBN: 3030190269

This book describes the rapidly expanding field of two-dimensional (2D) transition metal carbides and nitrides (MXenes). It covers fundamental knowledge on synthesis, structure, and properties of these new materials, and a description of their processing, scale-up and emerging applications. The ways in which the quickly expanding family of MXenes can outperform other novel nanomaterials in a variety of applications, spanning from energy storage and conversion to electronics; from water science to transportation; and in defense and medical applications, are discussed in detail.

Synthesis and Characterization of New Au-Ag Plasmonic Alloy Materials

Synthesis and Characterization of New Au-Ag Plasmonic Alloy Materials
Author: Xiaoyun Yuan
Publisher:
Total Pages: 96
Release: 2019
Genre:
ISBN:

Confining the delocalized fields of electromagnetic waves to the nanometer scale of metallic surface regions by exciting surface plasmons enables new methods of information transfer, energy conversion, red-ox chemistry and catalysis. Currently, Ag and Au are the most commonly used plasmonic materials, but neither is ideal. The goal of this work is to synthesize and characterize new Au- and Ag-based alloy materials with improved plasmonic response, low optical losses and high chemical stability by employing an electroless reduction method to deposit the alloys through co-deposition of silver and gold ions. The deposition kinetics of the ions in solution have been examined, followed by characterization of the resulting films to assess their quality, crystallinity and physical and chemical properties. We have employed spectroscopic ellipsometry (SE) to assess the optical and plasmonic properties, X-ray photoelectron spectroscopy (XPS) for film composition and electronic structure, X-ray diffraction (XRD) for film crystallinity, scanning electron microscopy (SEM) and high-resolution transmission electron microscopy (HRTEM) for their crystalline structure and morphology. The chemical stabilities of the alloy films have also been addressed by examining their stability upon exposure to various oxidants. Nanostructured alloy films deposited using the same chemistry on films patterned by electron beam lithography (EBL) yield large area, high quality, crystalline nanopillar arrays. These metamaterial arrays demonstrate plasmonic response which is determined by pillar diameter, periodicity and composition. The development of new high quality, crystalline, plasmonic alloy materials will enable new and improved performance in plasmonic and metamaterial research and application.

MAX Phases and Ultra-high Temperature Ceramics for Extreme Environments

MAX Phases and Ultra-high Temperature Ceramics for Extreme Environments
Author: It-Meng Low
Publisher: Engineering Science Reference
Total Pages: 0
Release: 2013
Genre: Ceramic-matrix composites
ISBN: 9781466640665

"This book investigates a new class of ultra-durable ceramic materials, which exhibit characteristics of both ceramics and metals, and will explore recent advances in the manufacturing of ceramic materials that improve their durability and other physical properties, enhancing their overall usability and cost-effectiveness"--

Microstructural and Mechanical Characterization of Alloys

Microstructural and Mechanical Characterization of Alloys
Author: Marek Sroka
Publisher: MDPI
Total Pages: 132
Release: 2021-01-13
Genre: Science
ISBN: 3039437550

This book contains manuscripts related to alloys (engineering materials) to discuss potential materials, methods for improvement of the strength and cyclic properties of alloys, the stability of microstructures, the possible application of new (or improved) alloys, and the use of treatment for alloy improvement. The broad spectrum of topics included in the articles of this Special Issue demonstrates that research into the microstructural and mechanical characteristics of alloys represents a contemporary field. These topics are also envisaged to be of interest to scientists in other research centers, and we can still expect new developments in this investigation field.

Cathodic Arcs

Cathodic Arcs
Author: André Anders
Publisher: Springer Science & Business Media
Total Pages: 555
Release: 2009-07-30
Genre: Science
ISBN: 0387791086

Cathodic arcs are among the longest studied yet least understood objects in science. Plasma-generating, tiny spots appear on the cathode; they are highly dynamic and hard to control. With an approach emphasizing the fractal character of cathode spots, strongly fluctuating plasma properties are described such as the presence of multiply charged ions that move with supersonic velocity. Richly illustrated, the book also deals with practical issues, such as arc source construction, macroparticle removal, and the synthesis of dense, well adherent coatings. The book spans a bridge from plasma physics to coatings technology based on energetic condensation, appealing to scientists, practitioners and graduate students alike.