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Chinese Scientific Paper Citation & BibTeX Generator

Specially calibrated for Western researchers, graduate students, and R&D teams citing Chinese peer-reviewed journals, CAS preprints, and technological disclosures. Generates perfectly formatted APA 7, BibTeX, MLA 9, Chicago, Harvard, and RIS (Zotero/EndNote) in one click.

Quick Test Samples:
Formatted Academic Citation
Yang, Bingwang, Zhang, Lixin, Liu, Chen, & Wang, Zhiqiang (2025). A Sulfobetaine Polyurethane for Substitutable Meniscus Implant with Excellent Mechanical, Tribological, and Biocompatible Properties. Journal of Central South University (Advanced Materials), 32(3), 108-124. https://doi.org/10.1007/s11771-024-5734-0
Style: APA• Ready for LaTeX, Word, Overleaf & Zotero
Active Paper Details

A Sulfobetaine Polyurethane for Substitutable Meniscus Implant with Excellent Mechanical, Tribological, and Biocompatible Properties

具有优异力学、摩擦学及生物相容性的磺酸基甜菜碱聚氨酯人工半月板假体材料研究

Authors: Yang, Bingwang, Zhang, Lixin, Liu, Chen, Wang, Zhiqiang

Journal: Journal of Central South University (Advanced Materials)

Year: 2025 • Vol. 32, Issue 3

Pages: 108-124

DOI: 10.1007/s11771-024-5734-0

Verified Pinyin Author Matching100% Calibrated

Best Practices for Citing Chinese Scientific Literature

A comprehensive editorial guide compiled by the SinoTechIntel Bibliographic Standards Committee for authors publishing in Nature, Science, IEEE, Elsevier, and Springer journals.

1Pinyin Author Naming Conventions

Chinese names typically follow the Surname First, Given Name Second structure (e.g. 张伟 $\rightarrow$ Zhang Wei). When publishing in international journals using APA 7 or Chicago styles:

  • Surname first in citation list: Zhang, W. or Zhang, Wei
  • Two-character given names: Should be joined without spaces or hyphenated according to the author's preferred English imprint (e.g. Wang, Xiao-Ming or Wang, Xiaoming).
  • Ambiguous multi-authors: Always retain full romanized given names in the initial BibTeX entry to prevent indexing collisions on Google Scholar.

2Standard Chinese Research Institution Codes

Major Chinese national laboratories have standardized international abbreviations recognized by Thomson Reuters / Clarivate Web of Science:

CAS: Chinese Academy of Sciences (中国科学院)
CASC: China Aerospace Science & Tech (航天科技)
CETC: China Electronics Tech Group (中国电科)
CAEP: China Academy of Engineering Physics (中物院)
IHEP: Institute of High Energy Physics (高能所)

Citing Translated and English-Editions of Chinese Journals

When citing papers translated from Chinese or published in dual-edition journals (such as Acta Metallurgica Sinica (English Letters) or Journal of Central South University), best practice dictates citing the verified English translation while referencing the original DOI or Chinese title in square brackets. This citation tool automatically embeds the canonical DOI and persistent archive link to guarantee digital provenance.

Supported Citation Formats Comparison Table

Citation StylePrimary Target FieldSoftware CompatibilityExport Format
APA 7th EditionPsychology, Social Sciences, Clean EnergyMicrosoft Word, Google Docs, ScrivenerRich Text / Plain Text
BibTeX (.bib)Computer Science, AI, Mathematics, PhysicsOverleaf, TeXmaker, LaTeX, Typst.bib file download
MLA 9th EditionHumanities, Literature, East Asian StudiesWord, Pages, ScrivenerRich Text / Plain Text
Chicago 17thHistory, Economics, Policy, MultidisciplinaryEndNote, Word, ZoteroAuthor-Date / Notes
RIS FormatUniversal Bibliographic Data ExchangeZotero, EndNote, Mendeley, Citavi.ris file download
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Explore Peer-Reviewed Chinese Research Papers

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Automotive-Grade 8-Inch Silicon Carbide (SiC) Wafers: Sanan Optoelectronics vs. Wolfspeed Defect Density and Yield Economics

For 800V EV traction inverters, Wolfspeed's 8-inch SiC wafers exhibit lower BPD density (0.1 vs 0.3 cm⁻²) and superior RDS(on) stability, but Sanan offers a 22% cost-per-good-die advantage due to higher throughput and lower substrate cost. Wolfspeed leads in high-voltage performance; Sanan wins on cost efficiency.

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2026 Research Article

Localized Asymmetric Electron Distribution in Covalent Organic Frameworks Promotes Efficient Photocatalytic H2O2 Production

Covalent organic frameworks (COFs) with highly symmetric skeletons exhibit limited O2 adsorption and weak thermodynamic driving force for the two-electron oxygen reduction reaction (2e− ORR), constraining photocatalytic H2O2 production. Here, we modulate the local arrangement of fluorine atoms in COFs, creating para- and ortho-fluorinated variants (Fp-COFs and Fo-COFs) to induce an asymmetric electronic distribution. This asymmetry provides effective O2-adsorption sites and strengthens the driving force for 2e− ORR. Theoretical analysis reveals that asymmetric fluorination delocalizes lone-pair electrons of F atoms to adjacent carbons, producing a discretized electron distribution that enhances O2 adsorption at imine bonds. The increased electron density on these carbons facilitates electron transfer into the π* orbital of adsorbed O2, accelerating ·OOH* intermediate formation and lowering the Gibbs free energy barrier of the 2e− pathway. Consequently, Fo-COFs achieve a quantum yield of 8.8% for H2O2 photosynthesis in pure water. This work provides a new approach for tuning local electron distribution in COFs, offering guidance for rational design of efficient photocatalytic materials and broadening the application prospects of asymmetric electronic structures.

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2026 Research Article

Superhydrophobic, Active Anti-Corrosion, and Solar Anti-Icing Coating with Fast Self-Healing Properties

Corrosion and icing critically threaten the service safety of magnesium (Mg) alloys in aerospace and transportation industries. Although superhydrophobic coatings offer effective anti-corrosion and anti-icing functions, they are limited by susceptibility to failure due to physical damage or capillary condensation. Here, a multifunctional integrated coating (SAAS) is reported, which endows coated Mg alloys with excellent superhydrophobicity, active anti-corrosion performance, anti-icing properties, and fast self-healing capabilities. Layered double hydroxide (LDH) modified and intercalated with sodium laurate (La) acts as nanoreservoirs, releasing La corrosion inhibitors via an anion-exchange process to retard corrosion. Incorporation of MXene provides full-spectrum high absorption and efficient photothermal conversion, achieving a surface temperature of 61 °C under 1.0 sun illumination, which prevents adhesion and accumulation of supercooled droplets. Near-infrared (NIR) irradiation induces macromolecular chain migration and phase transition, enabling fast self-healing of coating damage. The SAAS coating exhibits a water contact angle of 153°, a corrosion current density of 1.294 × 10⁻⁹ A·cm⁻² (four orders of magnitude lower than bare Mg alloy), an icing delay time approximately 23 times longer than the substrate, and a healing rate of about 0.34 cm·s⁻¹ under NIR. This study provides a novel strategy for enhancing aircraft skin durability and offers insights into multifunctional coating design.

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