Publications by authors named "Chunxian Guo"

An Fe-doped Ni-based oxalate framework, synthesized a facile co-precipitation method, is applied as an excellent bi-functional electrocatalyst for water and urea oxidation reactions. The obtained framework achieved a large current density of 100 mA cm at 1.497 V and 1.

View Article and Find Full Text PDF
Article Synopsis
  • - N6-methyladenosine (mA) is a key RNA modification that affects gene expression and is linked to several cancers, including breast and lung cancer, due to its role in abnormal transcription and translation processes.
  • - This review highlights recent advances in detection methods for mA RNA modifications, focusing on various techniques like chromatography, mass spectrometry, and fluorescence.
  • - The article discusses the implications of mA RNA methylation for biological functions, the molecular mechanisms involved, and presents future challenges and opportunities for developing improved detection strategies in this area.
View Article and Find Full Text PDF
Article Synopsis
  • Researchers created a new type of catalyst called FeNO/NC using a rapid heating method, which consists of iron, nitrogen, and carbon atoms.
  • The catalyst shows improved performance and durability for the oxygen reduction reaction (ORR) due to the interaction between iron-nitrogen and graphene that forms oxygen species.
  • Computational analysis suggests that this catalyst effectively manages the bonding and release of oxygen-related molecules, making it a strong candidate for developing advanced single-atom electrocatalysts.
View Article and Find Full Text PDF
Article Synopsis
  • This study presents a new and efficient way to create a self-luminous Cd-based metal-organic framework (Cd-MOF) using a specific ligand that enhances electrochemiluminescence (ECL).
  • The Cd-MOF improves ECL performance by 90 times compared to its individual components due to its unique structure and the catalytic properties of cadmium, which promote the production of luminescence.
  • A sensitive ECL sensor for detecting hydroquinone was developed, achieving a wide detection range and a low detection limit, making it effective for analytical applications.
View Article and Find Full Text PDF

Escherichia coli (E. coli) O157:H7 is an important food-borne pathogen that can cause hemorrhagic diarrhea and enteritis in humans and animals. Realizing the rapid quantitation of E.

View Article and Find Full Text PDF
Article Synopsis
  • Charge-redistributed CoO/FeCoP heterointerfaces are developed to enhance electrocatalytic urea oxidation in alkaline solutions, achieving high efficiency with only 1.41 V RHE at 100 mA cm.
  • The electrocatalyst demonstrates a low Tafel slope of 74 mV dec, indicating fast reaction kinetics for urea oxidation.
  • A remarkable stability of 36 hours showcases the effectiveness of the charge redistribution strategy in creating highly efficient electrocatalysts.
View Article and Find Full Text PDF

Electrochemical reduction of nitrate to ammonia (NRA) offers a sustainable approach for NH production and NO removal but suffers from low NH yield rate (<1.20 mmol h cm). We present bimetallic CuAg nanotips with tailored local environment, which achieve an ultrahigh NH yield rate of 2.

View Article and Find Full Text PDF
Article Synopsis
  • * The article explores the electrochemical nitrate reduction reaction (eNORR) as a sustainable alternative for producing ammonia and provides a theoretical overview of its mechanisms and pathways.
  • * It reviews recent advancements in electrocatalysts, including Cu-based, single-atom (SACs), dual-atom (DACs), and MXene catalysts, while also discussing the future challenges and opportunities in improving these catalysts for efficient ammonia production.
View Article and Find Full Text PDF

Electrochemical nitrate reduction to ammonia (NRA) is a promising approach to remove environmental pollutants while producing green NH under ambient conditions. Ag-based nanomaterials have been used in NRA but their iron series elements (Fe, Co, Ni) doping has not been explored yet. Herein, an effective and versatile doping strategy of Ag nanocrystals by iron series elements for efficient NRA is presented.

View Article and Find Full Text PDF

A W-doped Pt modified graphene oxide (Pt-W-GO) electrochemical microelectrode was developed to detect hydrogen peroxide (HO) in real time at a subcellular scale. Interestingly, results showed that the concentration of HO in the nucleus of HeLa cells was 2.68 times and 0.

View Article and Find Full Text PDF

A disordered crystal structure is an asymmetrical atomic lattice resulting from the missing atoms (vacancies) or the lattice misarrangement in a solid-state material. It has been widely proven to improve the electrocatalytic hydrogen evolution reaction (HER) process. In the present work, due to the special physical properties (the low evaporation temperature of below 900 °C), Zn is utilized as a sacrificial component to create senary PtIrNiCoFeZn high-entropy alloy (HEA) with highly disordered lattices.

View Article and Find Full Text PDF

Self-supported Ru-doped NiMoO (Ru-NiMoO) is synthesized on commercial NiMo foam. The Ru-NiMoO exhibits extremely high performance for electrocatalytic hydrogen evolution with a small overpotential of 170.6 mV to afford a current density of 1000 mA cm, and excellent durability for 150 hours in alkaline solution.

View Article and Find Full Text PDF

High-rate lithium/sodium ion batteries or capacitors are the most promising functional units to achieve fast energy storage that highly depends on charge host materials. Host materials with lamellar structures are a good choice for hybrid charge storage hosts (capacitor or redox type). Emerging layered transition metal carbo-chalcogenides (TMCC) with homogeneous sulfur termination are especially attractive for charge storage.

View Article and Find Full Text PDF

Guided bone regeneration (GBR) membranes that reside at the interface between the bone and soft tissues for bone repair attract increasing attention, but currently developed GBR membranes suffer from relatively poor osteogenic and antibacterial effects as well as limited mechanical property and biodegradability. We present here the design and fabrication of a bifunctional Janus GBR membrane based on a shear flow-driven layer by a layer self-assembly approach. The Janus GBR membrane comprises a calcium phosphate-collagen/polyethylene glycol (CaP@COL/PEG) layer and a chitosan/poly(acrylic acid) (CHI/PAA) layer on different sides of a collagen membrane to form a sandwich structure.

View Article and Find Full Text PDF

MicroRNAs (miRNAs) play vital roles in biological activities, but their in vivo imaging is still challenging due to the low abundance and the lack of efficient fluorescent tools. RNA aptamers with high affinity and low background emerge for bioimaging yet suffering from low brightness. We introduce a rational design based on target-mediated entropy-driven toehold exchange (EDTE) to induce the release of RNA aptamer and subsequently light up corresponding fluorophore, which achieves selective imaging of miRNAs with good stability in both living cells and tumor-bearing mouse.

View Article and Find Full Text PDF

Three-dimensional sponge-architecture covalent organic frameworks (COFs)-aerogel was successfully designed and synthesized via a freeze-drying template approach, and utilized as an efficient sorbent in solid-phase extraction (SPE). A method for selective enrichment of pharmaceutical contaminants including tetracycline, chlortetracycline, methacycline and oxytetracycline in the environment and food samples was proposed by combining with high performance liquid chromatography (HPLC). To understand the adsorption mechanism, selectivity test and molecular dynamics (MD) simulated calculation were both carried out.

View Article and Find Full Text PDF

The main challenges (sluggish electron transfer, low energy density) hinder the future application of enzymatic biofuel cells (EBFCs), which urgent to take effective measures to solve these issues. In this work, a composite of Au nanoparticles decorated graphdiyne (AuNPs@GDY) is fabricated and employed as the carrier of enzyme (G6PDH), and a mechanism based on π-π interaction of electron transfer is proposed to understand bioelectrocatalysis processes. The results show that the AuNPs@GDY composite exhibits the highest current density among the three materials (GDY, AuNPs, and AuNPs@GDY), which is 3.

View Article and Find Full Text PDF

PSS has been used as a biomimetic uric acid (UA) sensor but suffers from unfortunate low detection limit (LOD), narrow detection range and poor stability. Herein, we get graphdiyne (GDY) marry PEDOT:PSS to create a very stable GDY@PEDOT:PSS heterostructure for a biomimetic UA sensor, which accomplishes the lowest LOD (6 nM), the widest detection range (0.03 μM-7 mM) and the longest stability (98.

View Article and Find Full Text PDF

Urinary tract infections (UTIs), which can lead to pyelonephritis, urosepsis, and even death, are among the most prevalent infectious diseases worldwide, with a notable increase in treatment costs due to the emergence of drug-resistant pathogens. Current diagnostic strategies for UTIs, such as urine culture and flow cytometry, require time-consuming protocols and expensive equipment. We present here a machine learning-assisted colorimetric sensor array based on recognition of ligand-functionalized Fe single-atom nanozymes (SANs) for the identification of microorganisms at the order, genus, and species levels.

View Article and Find Full Text PDF

The emerging cell death modality of ferroptosis has garnered increasing attention for antitumor treatment but still suffers from low therapeutic efficacy. A metal-organic frameworks (MOFs)-based magnetic nanozyme (PZFH) comprising porphyrin-based Zr-MOF (PCN) on zinc ferrite (ZF) nanoparticles modified with hyaluronic acid, delivering excellent magnetophotonic response for efficient ferroptosis, is reported here. PZFH shows multienzyme-like cascade activity encompassing a photon-triggered oxidase-like catalysis to generate O , which is converted to HO by superoxide dismutase-like activity and subsequent ·OH by magneto-promoted peroxidase (POD) behavior.

View Article and Find Full Text PDF

We report here an asymmetric N,S-coordinated cobalt-based single-atom catalyst with sulfur (S)-bridge ligands (Co-N/S-C) for the oxygen reduction reaction (ORR). The Co-N/S-C exhibits a half-wave potential () of 0.908 V RHE, outperforming most state-of-the-art ORR catalysts.

View Article and Find Full Text PDF

The active component of copper-based materials for electrocatalytic nitrate reduction to ammonia (NRA) remains unclear due to the susceptibility of oxidation of copper. Using density functional theory calculations, NRA pathways are evaluated on low-index crystal surfaces CuO (111), CuO (111), and Cu (111) at different pH. CuO (111), with abundant undercoordinated Cu atoms on the surface, shows easier adsorption of NO than Cu (111) or CuO (111).

View Article and Find Full Text PDF

Exploring accurate, noninvasive, and inexpensive disease diagnostic sensors is a critical task in the fields of chemistry, biology, and medicine. The complexity of biological systems and the explosive growth of biomarker data have driven machine learning to become a powerful tool for mining and processing big data from disease diagnosis sensors. With the development of bioinformatics and artificial intelligence (AI), machine learning models formed by data mining have been able to guide more sensitive and accurate molecular computing.

View Article and Find Full Text PDF

DNA methyltransferase is significant in cellular activities and gene expression, and its aberrant expression is closely linked to various cancers during initiation and progression. Currently, there is a great demand for reliable and label-free techniques for DNA methyltransferase evaluation in tumor diagnosis and cancer therapy. Herein, a low-background fluorescent RNA aptamer-based sensing approach for label-free quantification of cytosine-guanine (CpG) dinucleotides methyltransferase (M.

View Article and Find Full Text PDF

Point-of-care testing (POCT) has attracted great interest because of its prominent advantages of rapidness, precision, portability, and real-time monitoring, thus becoming a powerful biomedical device in early clinical diagnosis and convenient medical treatments. However, its complicated manufacturing process and high expense severely impede mass production and broad applications. Herein, an innovative but inexpensive integrated sandwich-paper three-dimensional (3D) cell sensing device is fabricated to wirelessly detect HO released from living cells.

View Article and Find Full Text PDF