4.6 Article

Insights into the origin of the excited transitions in graphene quantum dots interacting with heavy metals in different media

期刊

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
卷 19, 期 45, 页码 30445-30463

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c7cp04711h

关键词

-

资金

  1. European Union [696656]
  2. VR [621-2014-5805]
  3. SSF [SSF GMT14-0077, SSF RMA15-0024]
  4. Wallenberg foundation
  5. Angpanneforeningens Forsknings-stiftelse [16-541]

向作者/读者索取更多资源

Exploring graphene quantum dots (GQDs) is an attractive way to design novel optical and electrochemical sensors for fast and reliable detection of toxic heavy metals (HMs), such as Cd, Hg and Pb. There are two main strategies for achieving this: (i) surface modification of an electrochemical working electrode by nanoscale GQDs and (ii) using a GQD solution electrolyte for optical sensing. Further development of these sensing technologies towards reaching or exceeding the WHO permissible limits implies deep understanding of the interaction between GQDs and HMs in different dielectric media. Solvent is expected to be one of the key factors affecting the binding ability of the GQDs to HMs and their electronic and optical properties. Here we show that the solvent-solute interaction changes the geometrical configuration, stability and absorption spectra of zigzag/armchair-edged GQDs after complexation with neutral and charged HM species. We observe physisorption behavior of Cd and Hg adatoms on the sp(2) surface with a solvent-mediated enhancement of the binding energy with increasing solvent polarity. For Pb adatoms, an opposite picture is revealed. We find that the solvent effect also manifests itself in weakening of the chemisorption strength in the HM cation-pi system with increasing dielectric constant of the solvent. Thus, a solvent engineering strategy based on control of the dielectric permittivity can be a promising approach to reach the desired binding energy in the HM@GQDs and to provide high sensitivity and selectivity of both optical and electrochemical sensors to toxic HMs we are interested in.

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.6
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

Article Chemistry, Physical

Temperature-Dependent Photoluminescence of ZnO Thin Films Grown on Off-Axis SiC Substrates by APMOCVD

Ivan Shtepliuk, Volodymyr Khranovskyy, Arsenii Ievtushenko, Rositsa Yakimova

Summary: This study systematically investigated the morphology and optical properties of ZnO layers grown on SiC substrates with various off-cut angles, highlighting the benefits of an 8-degree off-cut angle for step-flow growth and improved growth quality. Temperature-dependent photoluminescence measurements revealed a strong dependence of excitonic emission on off-cut angles, indicating a correlation between structural and optical properties of ZnO on vicinal surfaces.

MATERIALS (2021)

Article Materials Science, Multidisciplinary

Exploring the Interface Landscape of Noble Metals on Epitaxial Graphene

Ivan Shtepliuk, Ivan G. Ivanov, Nikolaos Pliatsikas, Tihomir Iakimov, Milena Beshkova, Kostas Sarakinos, Rositsa Yakimova

Summary: This study investigates the effect of noble metal nanostructures on the vibrational and electronic properties of monolayer epitaxial graphene through a combination of experimental and theoretical approaches. Results show that Au-decorated MLG exhibits Raman scattering spectra similar to pristine MLG, while stronger Ag physisorption triggers activation of defect-related phonon modes. The use of PCA and LDA can robustly classify large-scale Raman spectra of metal-decorated graphene, potentially useful for designing highly selective sensor arrays on MLG patches decorated with different metals.

PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE (2021)

Article Physics, Applied

Silver nanoparticle array on weakly interacting epitaxial graphene substrate as catalyst for hydrogen evolution reaction under neutral conditions

I. Shtepliuk, N. Pliatsikas, J. Jian, N. Ben Sedrine, T. Iakimov, K. Sarakinos, I. G. Ivanov, Jianwu Sun, R. Yakimova

Summary: This study presents an electrode concept for facilitating hydrogen evolution reaction (HER) under neutral conditions, utilizing annealed silver nanoparticle array on monolayer epitaxial graphene. The improved catalytic performance of the electrodes with 2 nm thick annealed silver is attributed to a synergistic effect between circular silver nanoparticles and compressively strained silver-free graphene regions, paving the way for the development of stable van der Waals heterostructure electrodes with tunable metal-carbon interaction for fast HER.

APPLIED PHYSICS LETTERS (2021)

Article Chemistry, Physical

Energetic bombardment and defect generation during magnetron-sputter-deposition of metal layers on graphene

N. Pliatsikas, O. Karabinaki, M. Zarshenas, G. A. Almyras, I Shtepliuk, R. Yakimova, J. Arvanitidis, D. Christofilos, K. Sarakinos

Summary: This study investigates the interplay between energetic bombardment effects in magnetron sputtering and defect generation in two-dimensional materials using deposition of gold layers on single-layer graphene as a model system. The results suggest that controlling the energy of backscattered argon atoms can reduce material damage and enable the fabrication of multifunctional metal contacts in devices based on 2D materials.

APPLIED SURFACE SCIENCE (2021)

Article Chemistry, Physical

Interaction of H and Li with epitaxial graphene on SiC: A comparative analysis by first principles study

Ivan Shtepliuk, Rositsa Yakimova

Summary: This paper discusses the adsorption, diffusion, and intercalation processes of hydrogen and lithium on monolayer epitaxial graphene grown on 4H-SiC, revealing strong and stable chemisorption of hydrogen on the top site of epitaxial graphene and lithiation process occurring via formation of LiC6 phase.

APPLIED SURFACE SCIENCE (2021)

Article Chemistry, Multidisciplinary

Bidirectional Hydrogen Electrocatalysis on Epitaxial Graphene

Mikhail Vagin, Ivan G. Ivanov, Rositsa Yakimova, Ivan Shtepliuk

Summary: The climate change caused by human activities has led to research on new energy resources, with hydrogen attracting interest as a high-energy-density green carrier. This study investigated the bidirectional electrocatalysis of the hydrogen evolution reaction (HER) and hydrogen oxidation reaction (HOR) on metal- and defect-free epigraphene (EG) grown on 4H silicon carbide (4HSiC). The results demonstrated the stability and reactivity of EG in the presence of acid and alkaline media, providing insights into the dominant pathway of HER and the role of the underlying substrate.

ACS OMEGA (2022)

Article Chemistry, Physical

Water Diffusion Effectsat Gold-Graphene Interfaces Supporting Surface Plasmon Polaritons

Quaid Zaman, Tahir, Fernando Lazaro Freire, Ivan Shtepliuk, Andre N. Barbosa, Marcelo E. H. Maia da Costa, Cesar Augusto Diaz Mendoza, Jefferson F. D. F. Araujo, Guilherme C. Concas, Marco Cremona, Zubair Ahmed, Omar Ginoble Pandoli, Ricardo Q. Aucelio, Victor Dmitriev, Karlo Q. da Costa, Andre Felipe S. Cruz, Gabriella Fibbi, Anna Laurenzana, Francesca Margheri, Anastasia Chilla, Francesca Scavone, Elena Frediani, Rajwali Khan, Nicola Daldosso, Elena Chiste, Gino Mariotto, Evelyn C. S. Santos, Tommaso Del Rosso

Summary: This study investigates the effects of water diffusion at different interfaces of gold-graphene plasmonic sensors on the propagation of surface plasmon polaritons. Experimental results show that water molecules can still diffuse into the plasmonic sensors through the borders of graphene domains, despite the protection provided by graphene. The study also proposes a simplified effective medium approach to describe the interactions between heterogeneous metal-carbon interfaces.

JOURNAL OF PHYSICAL CHEMISTRY C (2022)

Article Chemistry, Multidisciplinary

Understanding of the Electrochemical Behavior of Lithium at Bilayer-Patched Epitaxial Graphene/4H-SiC

Ivan Shtepliuk, Mikhail Vagin, Ziyauddin Khan, Alexei A. Zakharov, Tihomir Iakimov, Filippo Giannazzo, Ivan G. Ivanov, Rositsa Yakimova

Summary: This study demonstrates the advantages of bilayer-patched epitaxial graphene as an anode material in lithium-ion batteries. The presence of bilayer graphene patches enhances the quantum capacitance of the electrode and provides additional intercalation paths. Experimental results reveal the redox behavior of lithium at the bilayer-patched epitaxial graphene electrode and the fast lithium-ion transport to the electrode.

NANOMATERIALS (2022)

Article Chemistry, Multidisciplinary

Substrate mediated properties of gold monolayers on SiC

Ivan Shtepliuk, Rositsa Yakimova

Summary: In this study, the formation and catalytic activity of 2D gold layers supported by non-graphenized and graphenized SiC substrates under substrate effect were investigated. Through DFT calculations, we found that the gold monolayer exhibited epitaxial alignment with the underlying SiC substrate regardless of the presence of zero-layer or epitaxial graphene. This was attributed to the strong binding energy (about 4.7 eV) of 2D Au/SiC and the significant charge transfer at the interface, enabling the penetration of electric attraction through graphene layers. Intercalation of gold beneath zero-layer graphene followed by transformation to quasi-free-standing epitaxial graphene was found to effectively tune the interfacial charge transfer and catalytic activity of 2D Au. The sensing potential of substrate-supported 2D Au was also demonstrated through the adsorption behavior of NH3, NO2, and NO gas molecules. These findings can aid in the experimental design of substrate-supported 2D Au layers with targeted catalytic activity and sensing performance.

RSC ADVANCES (2023)

Article Engineering, Electrical & Electronic

Electrochemical performance of gold-decorated graphene electrodes integrated with SiC

Ivan Shtepliuk, Jing-Xin Jian, Nikolaos Pliatsikas, Emanuela Schiliro, Tihomir Iakimov, Gholamreza Yazdi, Ivan G. Ivanov, Filippo Giannazzo, Kostas Sarakinos, Rositsa Yakimova

Summary: In this study, the interface properties of gold decorated graphenized surfaces of 4H-SiC for electrochemical electrodes were investigated. A two-step process involving sputter deposition of Au layers onto 4H-SiC substrates and thermal annealing was used. Various analysis techniques were employed to understand the physical processes and intrinsic properties of the graphenized SiC. The results shed light on the interface properties of the heterostructures and provide insights for developing high performance catalytic and sensing devices.

MICROELECTRONIC ENGINEERING (2023)

Article Chemistry, Physical

Cd-substitution effect on photoexcitation properties of ZnO nanodots surrounded by carbon moiety

Ivan Shtepliuk

Summary: The geometrical structure and photoexcitation properties of Zn27-nCdnO27C42 complexes were investigated using density functional theory (DFT) and time-dependent DFT calculations. The results showed that the hybrid materials are energetically stable and the energy gap decreases when Cd atoms substitute Zn atoms. Further analysis revealed that the incorporation of Cd atoms enhances the intramolecular charge transfer in ZnO nanodots. These Cd-induced modifications in optical properties could potentially enable the use of Zn27-nCdnO27C42 complexes in optoelectronic and photocatalytic applications.

MOLECULAR PHYSICS (2023)

Article Chemistry, Analytical

A DFT Study of Phosphate Ion Adsorption on Graphene Nanodots: Implications for Sensing

Ivan Shtepliuk

Summary: The optical properties of graphene nanodots (GND) and their interaction with phosphate ions were studied using time-dependent density functional theory (TD-DFT) calculations. Adsorbed phosphate ions on GND surfaces were found to affect the energy gap and absorption spectra of the GND systems. Vacancies and metal dopants introduced in GND systems resulted in variations in absorption bands and wavelength shifts. These findings suggest the potential of GND for the development of optical sensors for phosphate detection.

SENSORS (2023)

Article Chemistry, Multidisciplinary

Defect-Induced Modulation of a 2D ZnO/Graphene Heterostructure: Exploring Structural and Electronic Transformations

Ivan Shtepliuk

Summary: This paper presents a theoretical study on the effects of oxygen vacancies and substitutional Fe-Zn atoms on the structural and electronic properties of a 2D ZnO/graphene heterostructure. The results show that these defects affect the interlayer distance and adhesion energy, with oxygen vacancies and Fe-Zn substitutional atoms having the strongest interaction with graphene. Oxygen vacancies generate localized defect states in the ZnO bandgap and shift the valence and conduction band positions, affecting the Schottky barrier. Fe dopants induce strong spin polarization and high spin density localized on Fe atoms and adjacent oxygen neighbors. This study provides insights into the electronic and adsorption properties of 2D ZnO/graphene heterostructures and their potential applications in sensing and catalysis.

APPLIED SCIENCES-BASEL (2023)

Article Chemistry, Physical

Nature of photoexcited states in ZnO-embedded graphene quantum dots

Ivan Shtepliuk, Rositsa Yakimova

Summary: The combination of wide-band gap semiconductors, such as zinc oxide (ZnO), and graphene quantum dots (GQDs) is a promising strategy to manipulate the properties of GQDs and create new functionalities. This study presents a theoretical design of ZnO-embedded graphene quantum dots, which have not yet been synthesized. The structure and light absorption properties of these hybrid materials are analyzed, with a focus on the photoexcited states. The results provide insights into the nature of light absorption in ZnO-embedded graphene quantum dots and lay the foundation for future experimental studies on these materials.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2023)

Article Chemistry, Physical

2D noble metals: growth peculiarities and prospects for hydrogen evolution reaction catalysis

Ivan Shtepliuk

Summary: This paper discusses the prospects of two-dimensional noble metals as catalytic materials for water splitting, as well as the synthesis techniques and practical applications. It highlights the potential and challenges of using these materials for future hydrogen production systems.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2023)

Article Chemistry, Physical

Effect of a single methyl substituent on the electronic structure of cobaltocene studied by computationally assisted MATI spectroscopy

Sergey Yu. Ketkov, Sheng-Yuan Tzeng, Elena A. Rychagova, Anton N. Lukoyanov, Wen-Bih Tzeng

Summary: Metallocenes, including methylcobaltocene, play important roles in various fields of chemistry. The ionization energy and vibrational structure of (Cp ')(Cp)Co can be influenced by introducing methyl substituents. The mass-analyzed threshold ionization spectrum and DFT calculations provide accurate information about the properties and transformations of (Cp ')(Cp)Co.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Review Chemistry, Physical

Polymer mechanochemistry: from single molecule to bulk material

Qifeng Mu, Jian Hu

Summary: Polymer mechanochemistry has experienced a renaissance due to the rapid development of mechanophores and principles governing mechanochemical transduction or material strengthening. It has not only provided fundamental guidelines for converting mechanical energy into chemical output, but also found applications in engineering and smart devices.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Complex oiling-out behavior of procaine with stable and metastable liquid phases

Da Hye Yang, Francesco Ricci, Fredrik L. Nordstrom, Na Li

Summary: Through systematic evaluation of the oiling-out behavior of procaine, we identified both stable and metastable liquid-liquid phase separation, and established phase diagrams to assist in rational selection of crystallization strategies.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Breaking the size constraint for nano cages using annular patchy particles

Vikki Anand Varma, Simmie Jaglan, Mohd Yasir Khan, Sujin B. Babu

Summary: Designing engineering structures like nanocages, shells, and containers through self-assembly of colloids is a challenging problem. This work proposes a simple model for the subunit, which leads to the formation of monodispersed spherical cages or containers. The model with only one control parameter can be used to design cages with the desired radius.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Effect of the charge rate on the mechanical response of composite graphite electrodes: in situ experiment and mathematical analysis

Hainan Jiang, Yaolong He, Xiaolin Li, Zhiyao Jin, Huijie Yu, Dawei Li

Summary: The cycling lifespan and coulombic efficiency of lithium-ion batteries are crucial for high C-rate applications. The Li-ion concentration plays a crucial role in determining the mechanical integrity and structural stability of electrodes. This study focuses on graphite as the working electrode and establishes an experimental system to investigate the mechanical properties of composite graphite electrode at different C-rates. Considering the effect of Li-ion concentration in stress analysis is found to be significant.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

The effect of weak π-π interactions on single-molecule electron transport properties of the tetraphenylethene molecule and its derivatives: a first-principles study

Zhiye Wang, Yunchuan Li, Mingjun Sun

Summary: This study investigates the influence of intramolecular pi-pi interactions on the electronic transport capabilities of molecules. By designing and analyzing three pi-conjugated molecules, the researchers observe that different pi-conjugated structures have varying effects on electron transport. The findings provide a theoretical foundation for designing single-molecule electronic devices with multiple electron channels based on intramolecular pi-pi interactions.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Designed fabrication of MoS2 hollow structures with different geometries and the comparative investigation toward capacitive properties

Yuandong Xu, Haoyang Feng, Chaoyang Dong, Yuqing Yang, Meng Zhou, Yajun Wei, Hui Guo, Yaqing Wei, Jishan Su, Yingying Ben, Xia Zhang

Summary: Hollow MoS2 cubes and spheres were successfully synthesized using a one-step hydrothermal method with the hard template method. The hollow MoS2 cubes exhibited higher specific capacitance and energy density compared to the hollow MoS2 spheres. The symmetrical supercapacitors assembled with these hollow structures showed good performance and high capacity retention after multiple cycles. These findings suggest that controlling the pore structure and surface characteristics of MoS2 is crucial for enhancing its electrochemical properties.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Exploiting the photophysical features of DMAN template in ITQ-51 zeotype in the search for FRET energy transfer

Ainhoa Oliden-Sanchez, Rebeca Sola-Llano, Joaquin Perez-Pariente, Luis Gomez-Hortiguela, Virginia Martinez-Martinez

Summary: The combination of photoactive molecules and inorganic structures is important for the development of advanced materials in optics. In this study, bulky dyes were successfully encapsulated in a zeolitic framework, resulting in emission throughout the visible spectrum.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Insights into the multi-functional lithium difluoro(oxalate)borate additive in boosting the Li-ion reaction kinetics for Li3VO4 anodes

Miaomiao Zhang, Cunyuan Pei, Qiqi Xiang, Lintao Liu, Zhongxu Dai, Huijuan Ma, Shibing Ni

Summary: The design of a solid electrolyte interphase (SEI) plays a crucial role in improving the electrochemical performance of anode materials. In this study, lithium difluoro(oxalate)borate (LiDFOB) is used as an electrolyte additive to form a protective SEI film on Li3VO4 (LVO) anodes. The addition of LiDFOB results in a dense, uniform, stable, and LiF-richer SEI, which enhances the Li-ion storage kinetics. The generated SEI also prevents further decomposition of the electrolyte and maintains the morphology of LVO anodes during charge/discharge processes. This work demonstrates the effectiveness of LiDFOB as a multi-functional additive for LiPF6 electrolytes and provides insights into SEI construction for high-performance LVO anodes.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

New insights into the structure of the Ag(111)-p(4 x 4)-O phase: high-resolution STM and DFT study

B. V. Andryushechkin, T. V. Pavlova, V. M. Shevlyuga

Summary: The atomic structure of the Ag(111)-p(4 x 4)-O phase was reexamined and two phases with the same periodicity were discovered. It was demonstrated that the accepted Ag6 model is incompatible with high-resolution oxygen-sensitive STM images.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

ClO-driven degradation of graphene oxide: new insights from DFT calculations

S. L. Romo-Avila, D. Marquez-Ruiz, R. A. Guirado-Lopez

Summary: In this study, we used density functional theory (DFT) calculations to investigate the interaction between model graphene oxide (GO) nanostructures and chlorine monoxide ClO. We aimed to understand the role of this highly oxidizing species in breaking C-C bonds and forming significant holes on GO sheets. Our results showed that C-C bonds in a single graphene oxide sheet can be broken through a simple mechanism involving the dissociation of two chemically attached ClO molecules. The formation of carbonyl groups and holes on the GO surface was also observed. This study provides important insights into the degradation of carbon nanotubes and the stability of GO during the myeloperoxidase (MPO) catalytic cycle.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Composition dependence of X-ray stability and degradation mechanisms at lead halide perovskite single crystal surfaces

Alberto Garcia-Fernandez, Birgit Kammlander, Stefania Riva, Hakan Rensmo, Ute B. Cappel

Summary: In this study, the X-ray stability of five different lead halide perovskite compositions (MAPbI3, MAPbCl3, MAPbBr3, FAPbBr3, CsPbBr3) was investigated using photoelectron spectroscopy. Different degradation mechanisms and resistance to X-ray were observed depending on the crystal composition. Overall, perovskite compositions based on the MA+ cation were found to be less stable than those based on FA+ or Cs+. Metallic lead formation was most easily observed in the chloride perovskite, followed by bromide, and very little in MAPbI3. Multiple degradation processes were identified for the bromide compositions, including ion migration, formation of volatile and solid products, as well as metallic lead. CsBr was formed as a solid degradation product on the surface of CsPbBr3.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Effect of porosity on rapid dynamic compaction of nickel nanopowder

Timofei Rostilov, Vadim Ziborov, Alexander Dolgoborodov, Mikhail Kuskov

Summary: The shock-loading behavior of nanomaterials is investigated in this study. It is found that shock compaction waves exhibit a distinct two-step structure, with the formation of faster precursor waves that travel ahead of the main compaction waves. The complexity of the shock Hugoniot curve of the tested nanomaterial is described, and the effect of initial porosity on the compressed states is demonstrated.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

The effect of temperature and oxygen partial pressure on the concentration of iron and manganese ions in La1/3Sr2/3Fe1-xMnxO3-δ

Sergey S. Nikitin, Alexander D. Koryakov, Elizaveta A. Antipinskaya, Alexey A. Markov, Mikhail V. Patrakeev

Summary: The stability of La1/3Sr2/3Fe1-xMnxO3-delta, a perovskite-type oxide, under reducing conditions is dependent on the manganese content. Increasing the manganese content leads to a decrease in stability. The behavior of iron and manganese in the oxide shows distinct differences, which can be attributed to the difference in the enthalpy of oxidation reactions. Additionally, the change in the La/Sr ratio affects the concentration of iron and manganese ions.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)

Article Chemistry, Physical

Perovskenes: two-dimensional perovskite-type monolayer materials predicted by first-principles calculations

Mosayeb Naseri, Shirin Amirian, Mehrdad Faraji, Mohammad Abdur Rashid, Maicon Pierre Lourenco, Venkataraman Thangadurai, D. R. Salahub

Summary: Inspired by the successful transfer of freestanding ultrathin films of SrTiO3 and BiFeO3, this study assessed the structural stability and investigated the electronic, optical, and thermoelectric properties of a group of two-dimensional perovskite-type materials called perovskenes. The findings revealed that these materials are wide bandgap semiconductors with potential application in UV shielding. Moreover, they exhibit better electrical and thermal conductivity at high temperatures, enabling efficient power generation in thermoelectric devices.

PHYSICAL CHEMISTRY CHEMICAL PHYSICS (2024)