Three-dimensional macroassembly of chromic hydroxide European Journal of Chemistry 12 (2) (2021) 165-167 European Journal of Chemistry ISSN 2153-2249 (Print) / ISSN 2153-2257 (Online) – Copyright © 2021 The Authors – Atlanta Publishing House LLC – Printed in the USA. This work is published and licensed by Atlanta Publishing House LLC – CC BY NC – Some Rights Reserved. https://dx.doi.org/10.5155/eurjchem.12.2.165-167.2082 European Journal of Chemistry View Journal Online View Article Online Three-dimensional macroassembly of chromic hydroxide Jiaxin Zhou and Zhenzhao Pei * Department of Chemical Engineering, School of Materials Science and Engineering, Hebei University of Engineering, Handan 056038, P.R. China zhoujx713@163.com (J.Z.), peizhenzhaophd@126.com (Z.P.) * Corresponding author at: Department of Chemical Engineering, School of Materials Science and Engineering, Hebei University of Engineering, Handan 056038, P.R. China. e-mail: peizhenzhaophd@126.com (Z. Pei). 10.5155/eurjchem.12.2.165-167.2082 Received: 24 January 2021 Received in revised form: 16 March 2021 Accepted: 28 March 2021 Published online: 30 June 2021 Printed: 30 June 2021 Assembly of small building blocks such as atoms, molecules, nanoparticles, and microparticles into macroscopic structures has opened up new and exciting opportunities in the realm of nanotechnology and microtechnology. Here, we report a simple hydrothermal approach for assembling chromic hydroxide microscopic particles into three- dimensional chromic hydroxide with cylindrical morphology. The morphology and size as prepared samples are controlled by the concentration of Cr(NO3)3. Our approach provides a reliable way to successfully assemble various other types of particles into cylindrical macrostructures, realizing the shape engineering of nanoscale and microscale structures to macroscopic well-defined architectures for further applications. Chromic Hydroxide Cylindrical Hydrothermal Macrostructures Three-dimensional Cite this: Eur. J. Chem. 2021, 12(2), 165-167 Journal website: www.eurjchem.com 1. Introduction Assemblies of metallic and inorganic particles that can translate phenomena at the nanoscale and microscale to the macroscopic level provide unique opportunities for the design of materials with collective properties and functions [1,2]. Extensive efforts thus have been directed toward the exploration of novel properties and functions that cannot be easily available without specific assembly of metallic and inorganic particles [3]. Therefore, great progress has been achieved in the self-assembly of building blocks [4], including nanoribbons [5], nanowires [6], nanofilms [7], and nanocrystals [8]. However, very few achievements have been made with three-dimensional macroscale assemblies. Therefore, the abilities to synthesize particles and to assemble particles in controllable size and shape become increasingly important [9]. Herein, we present the assembly of chromic hydroxide particles into three-dimensional macrostructures without a template to guide them, which is the spontaneous formation process in aqueous solution. We expect that our endeavor may further the research and application fields of chromic hydroxide materials. Recent advances on assembly technologies have explored various driving forces for the assembly process. Over the past few decades, layer-by-layer assembly has been of great interest owing to the ability to exert nanometer and micrometer control over particles [10]. Control over the size, shape, and compo- sition of these nanoscale and microscale particles has enabled the formation of macrostructures. Successful development of nanostructured and microstructured particles for assembly requires suitable methods for their fabrication. Nowadays, assembly technologies are available mainly including roll-to- roll, centrifugation, creaming, spraying, and electrodeposition [11]. Great research related to these assembly technologies is actively explored, shedding light on how these assembly technologies and underlying driving forces affect the formation and performance. Evidence is presented in this letter for the assembly of microstructured particles. Herein, we demonstrate that the three-dimensional assembly of chromic hydroxide particles into macroscopic structures can be successfully achieved via the facile hydrothermal method. The macroscopic size of the three-dimensional chromic hydroxide can be controlled by changing the effective concentration of chromic nitrate [12]. These results exhibit that chromic nitrate can be used to assemble into complicated three-dimensional macroscopic structures [13]. Furthermore, the formation of three- dimensional macroscopic chromic hydroxide may result in some interesting properties [14,15]. ABSTRACT RESEARCH ARTICLE KEYWORDS https://dx.doi.org/10.5155/eurjchem.12.2.165-167.2082 https://www.eurjchem.com/ https://dx.doi.org/10.5155/eurjchem.12.2.165-167.2082 mailto:zhoujx713@163.com mailto:peizhenzhaophd@126.com mailto:peizhenzhaophd@126.com http://www.eurjchem.com/ https://crossmark.crossref.org/dialog/?doi=10.5155/eurjchem.12.2.165-167.2082&domain=pdf&date_stamp=2021-06-30 166 Zhou and Pei / European Journal of Chemistry 12 (2) (2021) 165-167 2021 – European Journal of Chemistry – CC BY NC – DOI: 10.5155/eurjchem.12.2.165-167.2082 Figure 1. Photographic images freeze-dried three-dimensional structures prepared by the macroassembly of chromic hydroxide particles via the facile hydrothermal method: (a) the front view of the sample prepared when 35 mL solution containing 0.004 mol Cr(NO3)3 was used; (b) the front view of the as- prepared sample when 35 mL solution containing 0.006 mol Cr(NO3)3 was used; (c) the front view of the as-obtained sample when 35 mL solution containing 0.008 mol Cr(NO3)3 was used. Figure 2. SEM image of the as-obtained sample when 35 mL solution containing 0.006 mol Cr(NO3)3 was used. 2. Experimental The facile hydrothermal method was employed to synthesize macroscopic chromic hydroxide. A certain amount of chromic nitrate was ultrasonically dissolved in 35 mL of deionized water and stirred for two minutes. Then hexa- methylene amine (C6H12N4) was added to the solution and stirred for 15 minutes. Afterwards, the solution was hydro- thermally treated at high temperature (220 °C, 5 h), the chromic hydroxide with a three-dimensional structure was successfully synthesized. A freeze-drying process was used to obtain an unchanged three-dimensional structure. 3. Results and discussion Figures 1a-1c exhibited macroscopic views of the three- dimensional assembled chromic hydroxide samples. The cylindrical morphology of the as-prepared samples conformed to the morphology of the hydrothermal reaction vessel. It is found that the morphology and size as prepared samples are controlled by the concentration of Cr(NO3)3 in the solution. When a 35 mL solution containing 0.002 mol Cr(NO3)3 and 2 g C6H12N4 is contained in a hydrothermal reaction vessel with a volume of 50 mL, the cylindrical morphology cannot be formed and the morphology of the as-synthesized sample is a broken block solid; When 35 mL solution containing 0.004 mol Cr(NO3)3 and 2 g C6H12N4 is placed in a hydrothermal reaction vessel with a volume of 50 mL, the cylindrical morphology can be formed, however, the bottom of the cylinder is a little broken. The diameter of the as-obtained sample is about 2 cm and the height of the cylinder is 1.8 cm (Figure 1a); when 35 mL solution containing 0.006 mol Cr(NO3)3 and 2 g C6H12N4 is laid in a hydrothermal reaction vessel with a volume of 50 mL, the cylindrical morphology is well formed, the diameter of the as- synthesized sample is 2 cm and the height of the cylinder is 2.6 cm (Figure 1b); when 35 mL solution containing 0.008 mol Cr(NO3)3 and 2 g C6H12N4 is placed in a hydrothermal reaction vessel with a volume of 50 mL, the cylindrical morphology also can be formed, the diameter of the as-obtained sample is 2 cm and the height of the cylinder is 2.6 cm (Figure 1c); however, when 35 mL solution containing 0.010 mol Cr(NO3)3 and 2 g C6H12N4 is laid in a hydrothermal reaction vessel with a volume of 50 mL, the cylindrical morphology cannot be successfully formed and the morphology of the as-synthesized sample is broken block solid. These results indicate that the morphology and size of as-prepared samples are mainly determined by the concentration of Cr(NO3)3 in the solution. It can be concluded from the above results that when the concentration of Cr(NO3)3 is 0.002 mol, the cylindrical morphology cannot be formed. When the concentration of Cr(NO3)3 increases from 0.004 to 0.008 mol, the cylindrical morphology can be formed. Furthermore, when the concentration of Cr(NO3)3 is 0.006 mol, the cylindrical morphology is formed best. However, when the concentration of Cr(NO3)3 increases further to 0.010 mol, the cylindrical morphology cannot successfully be formed. It can be concluded from Figure 1 that when the concent- ration of Cr(NO3)3 is 0.006 mol, the cylindrical morphology is formed best. Detailed information of the as-prepared sample could be obtained from scanning electron microscopy (SEM). Figure 2 clearly shows that the cylindrical morphology is formed when the concentration of Cr(NO3)3 is 0.006 mol. The SEM image (Figure 2) exhibits that the as-prepared chromic hydroxide sample with cylindrical morphology is assembled by small chromic hydroxide particles with smooth surface. To investigate the mechanism of formation of these chromic hydroxide samples with cylindrical morphology, control experiments were carried out by hydrothermal treatment of Cr(NO3)3 without C6H12N4. When the same amount of Cr(NO3)3 and same hydrothermal reaction temperature were used, three-dimensional macroassembly of chromic hydroxide samples was not formed and the final prepared products were usually powders, stating that C6H12N4 played a key role in the macroassembly process of chromic hydroxide. As mentioned above, when the sample was synthesized without C6H12N4, the cylindrical morphology could not be successfully formed. It might be concluded that during the hydrothermal reaction C6H12N4 not only provided an alkaline environment, but also Zhou and Pei / European Journal of Chemistry 12 (2) (2021) 165-167 167 2021 – European Journal of Chemistry – CC BY NC – DOI: 10.5155/eurjchem.12.2.165-167.2082 acted as the template directing agent for macroassembly of the chromic hydroxide sample with cylindrical morphology. 4. Conclusion In summary, we have demonstrated that the three- dimensional macroassembly of a chromic hydroxide sample can be successfully achieved via a facile hydrothermal route. The size and microstructure of the as-prepared sample can be controlled by changing the concentration of Cr(NO3)3 in the solution. When the concentration of Cr(NO3)3 was low, loose agglomerates were formed, and it was not easy to form a specific shape. The viscosity was low during the reaction. When the amount of Cr(NO3)3 was 0.004 mol, the bottom of the cylindrical shape formed was damaged because of this reason. So, the specific shape cannot be formed at low concentration. On the contrary, when the concentration of Cr(NO3)3 was too high. A violent reaction will cause many small particles to be produced, and the reaction will not be complete. Many small particles with high activity were deposited too fast, resulting in failure to form a good cylindrical shape. Therefore, an appropriate amount of Cr(NO3)3 was required in the reaction process to form a good cylindrical shape. Further studies will be needed for the design of materials with mechanical and electro- optical properties. Using hydrothermal method to fabricate chromic hydroxides with cylindrical morphology may provide a means for producing other materials with the same cylindrical morphology. Disclosure statement Conflict of interests: The authors declare that they have no conflict of interest. Author contributions: All authors contributed equally to this work. Ethical approval: All ethical guidelines have been adhered. Sample availability: Samples of the compounds are available from the author. ORCID Jiaxin Zhou https://orcid.org/0000-0002-5049-1288 Zhenzhao Pei https://orcid.org/0000-0003-4298-7539 References [1]. Tang, Z.; Shen, S.; Zhuang, J.; Wang, X. Angew. Chem. Int. Ed Engl. 2010, 49, 4603–4607. [2]. Kim, J.-K.; Lee, E.; Jeong, Y.-H.; Lee, J.-K.; Zin, W.-C.; Lee, M. J. Am. Chem. Soc. 2007, 129, 6082–6083. [3]. Coughlan, C.; Ibáñez, M.; Dobrozhan, O.; Singh, A.; Cabot, A.; Ryan, K. M. Chem. Rev. 2017, 117, 5865–6109. [4]. Lee, M.; Cho, B. K.; Zin, W. C. Chem. Rev. 2001, 101, 3869–3892. [5]. Zubarev, E. R.; Pralle, M. U.; Sone, E. D.; Stupp, S. I. J. Am. Chem. Soc. 2001, 123, 4105–4106. [6]. Tang, Z.; Kotov, N. A.; Giersig, M. Science 2002, 297, 237–240. [7]. Richardson, J. J.; Björnmalm, M.; Caruso, F. Science 2015, 348, 2491– 2501. [8]. Zhang, S.-Y.; Regulacio, M. D.; Han, M.-Y. ChemInform 2014, 45, 2301– 2323. [9]. Shevchenko, E. V.; Talapin, D. V.; Kotov, N. A.; O’Brien, S.; Murray, C. B. 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This is an open access article distributed under the terms and conditions of the CC BY NC License, which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited without any further permission from Atlanta Publishing House LLC (European Journal of Chemistry). No use, distribution or reproduction is permitted which does not comply with these terms. Permissions for commercial use of this work beyond the scope of the License (http://www.eurjchem.com/index.php/eurjchem/pages/view/terms) are administered by Atlanta Publishing House LLC (European Journal of Chemistry). https://orcid.org/0000-0002-5049-1288 https://orcid.org/0000-0003-4298-7539 http://www.eurjchem.com/index.php/eurjchem/pages/view/terms http://creativecommons.org/licenses/by-nc/4.0 http://www.eurjchem.com/index.php/eurjchem/pages/view/terms 1. Introduction 2. Experimental 3. Results and discussion 4. 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