| Discipline name | Position | Best Scientists | Publications | D-Index |
|---|---|---|---|---|
| Electronics and Electrical Engineering | 198 | 84 | 157 | 18 |
| Materials Science | 272 | 414 | 574 | 27 |
| Chemistry | 384 | 191 | 269 | 20 |
Organic Electronics mostly deals with topics like Optoelectronics, OLED, Chemical engineering, Nanotechnology and Polymer. While work presented in it provided substantial information on Optoelectronics, it also covered topics in Layer (electronics), Transistor and Electrode. Issues in Transistor were discussed, taking into consideration concepts from other disciplines like Semiconductor and Thin-film transistor.
In Organic Electronics, Dielectric and Organic semiconductor are investigated in conjunction with one another to address concerns in Thin-film transistor research. In addition to OLED research, it aims to explore topics under Doping, Electroluminescence, Organic electronics, Photochemistry and Phosphorescence. It dives deep in exploring the relationship between the study of Organic electronics and Analytical chemistry.
The Photochemistry works featured in the journal incorporate elements from Acceptor and Fluorescence. Chemical engineering research presented in it encompasses a variety of subjects, including PEDOT:PSS, Polymer solar cell, Energy conversion efficiency, Thin film and Organic solar cell. The studies in Energy conversion efficiency featured incorporate elements of Perovskite (structure) and Photovoltaic system.
The published papers investigate studies in Optoelectronics, OLED, Organic electronics, Nanotechnology and Analytical chemistry. The studies on Optoelectronics discussed at the published papers can also contribute to research in the domains of Layer (electronics), Thin-film transistor and Transistor. While the published papers focused on Nanotechnology, they were also able to explore topics like Organic solar cell, Chemical engineering, Electrode and Polymer solar cell.
The topics of Optoelectronics, Perovskite (structure), Photochemistry, Thermal stability and Coating are the focal point of discussions in Organic Electronics. While Organic Electronics focused on Optoelectronics, it was also able to explore topics like Organic memory, Annealing (metallurgy) and Oxygen. Perovskite (structure) research featured in it incorporates concerns from various other topics such as In situ, Heterojunction, Inorganic chemistry and Passivation.
Derivative (chemistry), Cocrystal and Pentacene are some topics wherein Photochemistry research discussed in the journal have an impact. The study of Solution process and how it intertwines with concepts under OLED were explored in the presented Coating research. While OLED is the focus of the journal, it also provided insights into the studies of Acceptor, Luminescence, Moiety, Phosphorescence and Quantum efficiency.
A key indicator for each journal is its effectiveness in reaching other researchers with the papers published at that venue.
The chart below presents the interquartile range (first quartile 25%, median 50% and third quartile 75%) of the number of citations of articles over time.
The top authors publishing in Organic Electronics (based on the number of publications) are:
The overall trend for top authors publishing in this journal is outlined below. The chart shows the number of publications at each edition of the journal for top authors.
Only papers with recognized affiliations are considered
The top affiliations publishing in Organic Electronics (based on the number of publications) are:
The overall trend for top affiliations publishing in this journal is outlined below. The chart shows the number of publications at each edition of the journal for top affiliations.
The publication chance index shows the ratio of articles published by the best research institutions in the journal edition to all articles published within that journal. The best research institutions were selected based on the largest number of articles published during all editions of the journal.
The chart below presents the percentage ratio of articles from top institutions (based on their ranking of total papers).Top affiliations were grouped by their rank into the following tiers: top 1-10, top 11-20, top 21-50, and top 51+. Only articles with a recognized affiliation are considered.
During the most recent 2022 edition, 38.46% of publications had an unrecognized affiliation. Out of the publications with recognized affiliations, 50.00% were posted by at least one author from the top 10 institutions publishing in the journal. Another 12.50% included authors affiliated with research institutions from the top 11-20 affiliations. Institutions from the 21-50 range included 12.50% of all publications and 25.00% were from other institutions.
A very common phenomenon observed among researchers publishing scientific articles is the intentional selection of journals they have already attended in the past. In particular, it is worth analyzing the case when the authors participate in the same journal from year to year.
The Returning Authors Index presented below illustrates the ratio of authors who participated in both a given as well as the previous edition of the journal in relation to all participants in a given year.
The graph below shows the Returning Institution Index, illustrating the ratio of institutions that participated in both a given and the previous edition of the conference in relation to all affiliations present in a given year.
Our experience to innovation index was created to show a cross-section of the experience level of authors publishing in a journal. The index includes the authors publishing at the last edition of a journal, grouped by total number of publications throughout their academic career (P) and the total number of citations of these publications ever received (C).
The group intervals were selected empirically to best show the diversity of the authors' experiences, their labels were selected as a convenience, not as judgment. The authors were divided into the following groups:
The chart below illustrates experience levels of first authors in cases of publications with multiple authors.
Qamar Wali;Faiza Jan Iftikhar;Muhammad Ejaz Khan;Abid Ullah
(2020)Nicola Coppedè;Marco Giannetto;Marco Villani;Valeria Lucchini;Valeria Lucchini
(2020)Hea-Lim Park;Hea-Lim Park;Tae-Woo Lee
(2021)Rashid Ilmi;Danyang Zhang;José D.L. Dutra;Necmi Dege
(2021)Da Yin;Zhi-Yu Chen;Nai-Rong Jiang;Yue-Feng Liu
(2020)Studying Chemistry in the USA opens doors to diverse career paths, especially when complemented by specialized online degrees. For example, those interested in the healthcare sales industry can explore roles like pharmaceutical sales representative, where knowledge of chemistry aids in understanding drug formulations and client needs. To learn more about compensation and career growth in this field, check out the pharmaceutical rep salary information.
Another promising avenue is medical coding, which requires an understanding of medical terminology and billing processes. Chemistry graduates interested in this field might consider online certification programs, with insights into earning potential available through the cpc medical coding salary resource.
Pharmacy remains a classic choice for chemistry students. Pursuing a Doctor of Pharmacy degree leads to roles centered on medication management and patient care. Prospective pharmacists can gain detailed guidance on qualifying for this profession and expected compensation by exploring the how to become a pharmacist salary page.
For those drawn to direct patient care, accelerated nursing programs provide a fast track for non-nurses to enter the field. Many reputable institutions offer flexible online options tailored for graduates from other disciplines. Discover top programs with the online accelerated nursing programs for non nurses guide and take the next step in a healthcare career.