ACS Publications. Most Trusted. Most Cited. Most Read
My Activity
CONTENT TYPES

Intrinsic Optical Properties and Divergent Doping Effects of Manganese(II) on Luminescence for Tin(II) Phosphite Grown from a Deep-Eutectic Solvent

View Author Information
Department of Chemistry, National Tsing Hua University, Hsinchu 30013, Taiwan
*E-mail: [email protected]. Fax: 886-35-711082.
Cite this: Inorg. Chem. 2012, 51, 4, 1986–1988
Publication Date (Web):January 30, 2012
https://doi.org/10.1021/ic202419q
Copyright © 2012 American Chemical Society

    Article Views

    944

    Altmetric

    -

    Citations

    LEARN ABOUT THESE METRICS
    Read OnlinePDF (965 KB)
    Supporting Info (2)»

    Abstract

    Abstract Image

    This is the first study on the ionothermal synthesis, intrinsic photoluminescence (PL), and dopant effects for tin(II) phosphite, a stereochemically active 5s2 lone-pair-electron-containing compound, the fundamental properties of which have rarely been explored before. In a new deep-eutectic solvent, single-phased products of SnHPO3 (1) and Sn1–xMnxHPO3 (2) have been achieved in high yield. The crystalline powder of 1 is nonenantiomorphic, with an intense second-harmonic generation comparable to that of potassium dihydrogen phosphate. Under UV excitation, it unexpectedly emits white PL, an important intrinsic property never discovered in tin(II) oxysalts. Electron paramagnetic resonance hyperfine splitting characteristic of manganese has been detected on 2 and a three-pulse electron-spin-echo envelope modulation technique implemented to locate its corresponding location in the inorganic host. On the basis of temperature-dependent PL and lifetime measurements, the incorporated Mn2+ uncommonly acts as a sensitizer in enhancing white emission until extremely low temperatures, in which it would resume its normal role as an activator to give out characteristic orange light.

    Supporting Information

    ARTICLE SECTIONS
    Jump To

    Crystallographic information files (CIF), tables of crystal data and selected bond lengths, ORTEP figure of 1, ICP-AES data, IR spectrum, SHG signal, and details of EPR and ESEEM experiments. This material is available free of charge via the Internet at http://pubs.acs.org.

    Terms & Conditions

    Most electronic Supporting Information files are available without a subscription to ACS Web Editions. Such files may be downloaded by article for research use (if there is a public use license linked to the relevant article, that license may permit other uses). Permission may be obtained from ACS for other uses through requests via the RightsLink permission system: http://pubs.acs.org/page/copyright/permissions.html.

    Cited By

    This article is cited by 20 publications.

    1. Hui-Lin Huang, Yu-Ting Huang, and Sue-Lein Wang . A Crystalline Mesolamellar Gallium Phosphate with Zwitterionic-type Templates Exhibiting Green Afterglow Property. Inorganic Chemistry 2016, 55 (14) , 6836-6838. https://doi.org/10.1021/acs.inorgchem.6b00941
    2. Li-Ming Li, Kai Cheng, Fei Wang, and Jian Zhang . Ionothermal Synthesis of Chiral Metal Phosphite Open Frameworks with In Situ Generated Organic Templates. Inorganic Chemistry 2013, 52 (10) , 5654-5656. https://doi.org/10.1021/ic4007795
    3. Wenjing Tan, Chenyang Zhang, Tingting Huang, Bingbing Zhang. Recent progress of newly developed functional building units and corresponding nonlinear optical materials. Chinese Journal of Structural Chemistry 2023, 42 (9) , 100098. https://doi.org/10.1016/j.cjsc.2023.100098
    4. Karzan A. Omar, Rahmat Sadeghi. Database of deep eutectic solvents and their physical properties: A review. Journal of Molecular Liquids 2023, 384 , 121899. https://doi.org/10.1016/j.molliq.2023.121899
    5. Oliver S. Hammond, Anja-Verena Mudring. Ionic liquids and deep eutectics as a transformative platform for the synthesis of nanomaterials. Chemical Communications 2022, 58 (24) , 3865-3892. https://doi.org/10.1039/D1CC06543B
    6. Yizhak Marcus. Applications of Deep Eutectic Solvents. 2019, 111-151. https://doi.org/10.1007/978-3-030-00608-2_4
    7. . SUBSTITUTION OF SOLVENTS BY SAFER PRODUCTS. 2019, 1455-1634. https://doi.org/10.1016/B978-1-927885-41-3.50010-3
    8. Jun‐Ling Song, Tian‐Shuo Guo, Zhong‐Yu Shi, Yu‐Zhuo Wang, Jian‐Qiu Cui, Jian‐Han Zhang, Chi Zhang. Syntheses, Crystal Structures and Luminescent Properties of Two New Heterometallic Phosphates: Sn 2 Ge(PO 4 ) 2 (OH) 2 and Sn 2 Mn(PO 4 ) 2. ChemistrySelect 2018, 3 (4) , 1019-1023. https://doi.org/10.1002/slct.201702844
    9. Song-De Han, Xiu-Rong Zhang, Jie Pan, Ying Mu, Jin-Hua Li, Guo-Ming Wang. Two- and three-dimensional hybrid zinc phosphites: syntheses, structures and photoluminescence properties. Dalton Transactions 2018, 47 (35) , 12468-12473. https://doi.org/10.1039/C8DT02761G
    10. Xiaoying Zhang, Xiaolei Li, Jingping Zhang. Solvothermal synthesis, crystal structures and characterization of open-framework metal (CoII and MnII) phosphites with helical channels and 16-membered rings. Inorganic Chemistry Communications 2017, 84 , 77-80. https://doi.org/10.1016/j.inoche.2017.07.022
    11. Jie-Ling Xie, Yu-Hua Zhou, Long-Hua Li, Jian-Han Zhang, Jun-Ling Song. A new method for the preparation of a [Sn 2 (H 2 PO 2 ) 3 ]Br SHG-active polar crystal via surfactant-induced strategy. Dalton Transactions 2017, 46 (29) , 9339-9343. https://doi.org/10.1039/C7DT02116J
    12. Jun-Ling Song, Xi-Rui Zhang, Rui-Feng Lu. Facile synthesis of tin phosphite nanosheets via exfoliated bulk crystals: Electronic structure and piezoelectric property. Journal of Colloid and Interface Science 2016, 475 , 192-195. https://doi.org/10.1016/j.jcis.2016.04.052
    13. Jun-Ling Song, Jian-Han Zhang, Jiang-Gao Mao. Non-noble metal vanadium phosphites with broad absorption for photocatalytic hydrogen evolution. Journal of Solid State Chemistry 2016, 237 , 371-377. https://doi.org/10.1016/j.jssc.2016.02.035
    14. Joseba Orive, Roberto Fernández de Luis, Jesús Rodríguez Fernández, Luis Lezama, María I. Arriortua. A x (H 3 O) 2−x Mn 5 (HPO 3 ) 6 (A = Li, Na, K and NH 4 ): open-framework manganese( ii ) phosphites templated by mixed cationic species. Dalton Transactions 2016, 45 (30) , 12188-12199. https://doi.org/10.1039/C6DT01610C
    15. Jun-Ling Song, Chun-Li Hu, Xiang Xu, Fang Kong, Jiang-Gao Mao. Synthesis, crystal structures and properties of lead phosphite compounds. Journal of Solid State Chemistry 2015, 231 , 198-203. https://doi.org/10.1016/j.jssc.2015.08.031
    16. Hui‐Lin Huang, Sue‐Lein Wang. Nanoribbon‐Structured Organo Zinc Phosphite Polymorphs with White‐Light Photoluminescence. Angewandte Chemie 2015, 127 (3) , 979-982. https://doi.org/10.1002/ange.201408969
    17. Hui‐Lin Huang, Sue‐Lein Wang. Nanoribbon‐Structured Organo Zinc Phosphite Polymorphs with White‐Light Photoluminescence. Angewandte Chemie International Edition 2015, 54 (3) , 965-968. https://doi.org/10.1002/anie.201408969
    18. . SAFER SOLVENTS AND PROCESSES. 2014, 635-785. https://doi.org/10.1016/B978-1-895198-65-2.50010-7
    19. Baokun Tang, Kyung Ho Row. Recent developments in deep eutectic solvents in chemical sciences. Monatshefte für Chemie - Chemical Monthly 2013, 144 (10) , 1427-1454. https://doi.org/10.1007/s00706-013-1050-3
    20. Hui‐Lin Huang, Yei‐Chen Lai, Yun‐Wei Chiang, Sue‐Lein Wang. ChemInform Abstract: Intrinsic Optical Properties and Divergent Doping Effects of Manganese(II) on Luminescence for Tin(II) Phosphite Grown from a Deep‐Eutectic Solvent.. ChemInform 2012, 43 (17) https://doi.org/10.1002/chin.201217005

    Pair your accounts.

    Export articles to Mendeley

    Get article recommendations from ACS based on references in your Mendeley library.

    Pair your accounts.

    Export articles to Mendeley

    Get article recommendations from ACS based on references in your Mendeley library.

    You’ve supercharged your research process with ACS and Mendeley!

    STEP 1:
    Click to create an ACS ID

    Please note: If you switch to a different device, you may be asked to login again with only your ACS ID.

    Please note: If you switch to a different device, you may be asked to login again with only your ACS ID.

    Please note: If you switch to a different device, you may be asked to login again with only your ACS ID.

    MENDELEY PAIRING EXPIRED
    Your Mendeley pairing has expired. Please reconnect