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Journal of Pharmacognosy & Natural Products

ISSN: 2472-0992

Open Access

Citations Report

Journal of Pharmacognosy & Natural Products : Citations & Metrics Report

Articles published in Journal of Pharmacognosy & Natural Products have been cited by esteemed scholars and scientists all around the world.

Journal of Pharmacognosy & Natural Products has got h-index 12, which means every article in Journal of Pharmacognosy & Natural Products has got 12 average citations.

Following are the list of articles that have cited the articles published in Journal of Pharmacognosy & Natural Products.

  2022 2021 2020 2019 2018

Year wise published articles

62 61 19 5 15

Year wise citations received

131 105 107 79 83
Journal total citations count 606
Journal impact factor 1.52
Journal 5 years impact factor 4.26
Journal cite score 4.08
Journal h-index 12
Journal h-index since 2018 10
Important citations

In Situ Characterization of Lopinavir by ATR-FTIR Biospectroscopy

Perspectives on Sub–Nanometer Level of Electronic Structure of the Synchrotron with Mendelevium Nanoparticles for Elimination of Human Cancer Cells, Tissues and Tumors Treatment Using Mathematica 12.0

Pros and Cons Controversy on Synchrotronic Biosensor Using Os–Pd/ HfC Nanocomposite for Tracking, Monitoring, Imaging, Measuring, Diagnosing and Detecting Cancer Cells, Tissues and Tumors

Role and Applications of Synchrotron Removal from Raman Spectra for Quantitative Analysis of Cancer Tissues

INTERNATIONAL JOURNAL OF PHARMACEUTICAL SCIENCES AND RESEARCH

NMR and molecular dynamics studies combined to anti–cancer nano drugs and DNA/RNA interactions in Gum cancer cells and their modulations with resistance mutations

Modelling and simulation of 13C, 15N, 17O NMR chemical shifts, 17O and 14N electric field gradients and measurement of 13C and 15N chemical shifts in DNA/RNA of humangum cancer cells, tissues and tumors using NMR biospectroscopic profiling for novel systems diagnostics

Two–dimensional (2D) 1H or proton NMR, 13C NMR, 15N NMR and 31P NMR spectroscopy comparative study on malignant and benign human cancer cells and tissues under synchrotron radiation with the passage of time

Adamantane, Irene, Naftazone and Pyridine-Enhanced Precatalyst Preparation Stabilization and Initiation (PEPPSI) Nano Molecules

Investigation of Prevention, Protection and Treatment of Ritonavir Effectiveness on Coronavirus Disease–2019 (COVID–19) Infection Using Fourier Transform Raman (FT–Raman) Biospectroscopy

In Situ Monitoring of Ritonavir Protective and Therapeutic Influence as a Potent Drug on Coronavirus Disease–2019 (COVID–19) Infection by Attenuated Total Reflectance–Fourier Transform Infrared (ATR–FTIR Fingerprint) Biospectroscopy

Investigation of the internal structure and dynamics of gum cancer cells, tissues and tumors by 13C–NMR spectra of DNA/RNA of gum cancer cells as an essential structural tool for integrative studies of gum cancer cells development

Sydnone, Münchnone, Montréalone, Mogone, Montelukast, Quebecol and Palau’amine- Enhanced Precatalyst Preparation Stabilization and Initiation (EPPSI) Nano Molecules

Synchrotron radiation emission as a function of the beam energy and thorium nanoparticles

Simulation of Interaction of Synchrotron Radiation Emission as a Function of the Beam Energy and Californium Nanoparticles Using 3D Finite Element Method (FEM) as an Optothermal Human Cancer Cells, Tissues and Tumors Treatment

Pros and Cons of Livermorium Nanoparticles for Human Cancer Cells, Tissues and Tumors Treatment under Synchrotron Radiation Using Mathematica 12.0

Study of Human Cancer Cells, Tissues and Tumors Treatment Through Interaction Between Synchrotron Radiation and Cerium Nanoparticles

Study of Human Cancer Cells, Tissues and Tumors Treatment Through Interaction Between Synchrotron Radiation and Cerium Nanoparticles

Recent New Results and Achievements of California South University (CSU) BioSpectroscopy Core Research Laboratory for COVID-19 or 2019-nCoV Treatment: Diagnosis and Treatment Methodologies of “Coronavirus”

A New Approach to Interaction between Beam Energy and Erbium Nanoparticles

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