REVIEW 5 major objections 6 minor 56 references
Physical and chemical characterization of Saccharum spontaneum flower fibre: potential applications in thermal insulation and microbial fuel cells
T0 review · 5 major / 6 minor · reviewed 2026-08-10 · deepseek-v4-flash
Pith's one-line read Saccharum spontaneum flower fibre is a newly characterized natural cellulosic fibre with 90.9% holocellulose, a hollow cross-section, and 63±5 cN/tex tenacity.
desk verdict The new flower-fibre data are worth having, but the 90.9% holocellulose headline is contradicted by the paper's own equation and table, so as written the central chemical claim does not hold. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The central object is the fibre's lumen: the hollow channel seen in FESEM cross-sections is what carries the insulation and moisture-management arguments, because a closed air gap is what would give the fibre low thermal conductivity and vapour permeability. The structural backbone is cellulose Iβ, identified by its characteristic XRD reflections and quantified by Segal's crystallinity index at roughly 75%, which the paper links to the fibre's low elongation and high tenacity. The supporting chain of measurements—chemical composition, stelometer bundle tenacity, FTIR, TGA, and FESEM—is what the paper offers as evidence that this is a new, reproducible natural fibre.
What would settle it
A direct check would be to repeat the characterization on fibre from multiple plants and seasons: if a mass-balance analysis of the composition does not close, or if bundle tenacity from replicate samples falls back to the cotton/jute range, then the claimed values and the application inferences would not hold.
Extended reading notes
Core claim
The paper's core claim is that Saccharum spontaneum flower fibre is a distinct cellulosic fibre whose combination of properties has not been previously documented: high holocellulose content, high crystallinity near 75%, high bundle tenacity of 63±5 cN/tex, low elongation of about 1.9%, and a hollow cylindrical morphology with an average diameter of 8.2 µm and a cell wall of 1.8 µm. The authors identify the crystal form as cellulose Iβ from XRD peaks at 16.4°, 22.2°, and 34.9°, and use the hollow core, smooth surface, and thermal degradation pattern to argue for potential use in thermal insulation, moisture management, and microbial fuel cell anodes. The discovery is the characterization dataset itself; the application claims are presented as indications, not as measured end-use performance.
Load-bearing premise
The load-bearing premise is that the reported numbers represent Saccharum spontaneum flower fibre as a whole, yet most values are given without replicate counts or error bars, and the manuscript's composition figures are internally inconsistent (90.9% holocellulose in the abstract versus 87.5% from the Table 1 components), so the comparisons to cotton, jute, and flax stand only if the data are reproducible.
Editorial extensions
If this is right
- A 25.9 mm staple length comparable to cotton means the fibre could be spun on conventional cotton-type ring frames without new infrastructure.
- With tenacity above cotton and jute and near flax, the fibre is a plausible reinforcement for composites and technical textiles where strength and stiffness are the priority.
- The high crystallinity and 1.9% elongation mean the fibre will be brittle in apparel; blends with more extensible fibres would be needed for clothing.
- The thermal degradation profile (hemicellulose at 200–340°C, cellulose at 350–510°C, ~5% char) sets an upper processing-temperature limit for composites and nonwovens.
- The hollow lumen, if preserved through processing, would support the proposed thermal insulation and moisture-transport applications, and the kapok comparison suggests a route to microbial fuel cell anodes.
Reading between the lines
- Beyond the paper, the wax (about 4.6%) and ash (about 4.5%) contents imply that scouring or alkali pretreatment will be needed before dyeing, bleaching, or resin bonding; the paper does not test this.
- Beyond the paper, the manuscript's own numbers are not fully consistent—the abstract reports 90.9% holocellulose while Table 1's alpha-cellulose (64.4%) plus hemicellulose (23.1%) sums to 87.5%—so a replication study should reconcile the composition before the figure is reused.
- Beyond the paper, carbonizing the fibre while keeping its lumen open would provide a direct experimental check of the microbial fuel cell idea, since kapok's value in that role comes from its hollow carbonized form.
- Beyond the paper, if the lumen collapses during carding or spinning, the insulation and moisture management advantages would shrink; cross-sections of processed yarns would settle this.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper reports the extraction and physical-chemical characterization of a new natural cellulosic fibre from the flower of Saccharum spontaneum. The authors measure chemical composition (reported as 90.9% holocellulose), moisture content, fibre length, tensile properties, crystallinity, morphology by FESEM, chemical groups by FTIR, and thermal degradation by TGA/DTA. The central claims are that the fibre has high cellulose content, a tenacity of 63±5 cN/tex that is higher than cotton and jute, a hollow cross-section, and therefore 'potential' as a thermal insulation material and for microbial fuel cell applications. The study is primarily an addition of a new fibre data set to the natural-fibre characterization literature.
Significance. If the reported values are accurate and reproducible, the paper adds a new renewable fibre to the catalog of natural cellulosic fibres, with potential relevance to textiles, composites, and bio-based materials. The use of standard characterization tools (FTIR, XRD, FESEM, TGA) is appropriate for a first-pass characterization study, and the hollow-morphology observation connects the fibre to an interesting class of natural hollow fibres (kapok, milkweed) that have demonstrated value in insulation and microbial fuel cell anodes. However, the current manuscript contains internal inconsistencies in the central chemical-composition numbers, equations that do not match their stated definitions, and a general absence of replicate data and error bars. These issues undermine the reliability of the headline claims and must be resolved before the data set can be considered dependable. The application claims are plausible hypotheses but are not demonstrated by direct measurements.
major comments (5)
- [Materials and Method, Chemical composition (Eqs. 2-4)] Equations (2), (3), and (4) are written in the form (initial - final)/initial, which computes the mass fraction removed, not the residue content defined in the text. For holocellulose, the correct expression is W2/W1 × 100; for alpha-cellulose it is W3/W2 × 100; and for lignin it is W5/W4 × 100 (or, equivalently, the equations should use the residue weight in the numerator). As written, the reported 90.9% holocellulose cannot be reproduced from the paper's own definitions, and the alpha-cellulose and lignin equations also appear to compute the opposite of the stated quantity.
- [Results and Discussion, Chemical composition and Table 1] The abstract, highlights, and conclusion state a holocellulose content of 90.9%, and the Results text reports alpha-cellulose 64.8% and hemicellulose 26.1% (sum 90.9%). However, Table 1 lists alpha-cellulose 64.4% and hemicellulose 23.1% (sum 87.5%), with lignin 3.8%, wax 4.56%, and ash 4.5%. These two sets of values are mutually inconsistent, and neither is reconciled with the additional components. The authors need to clarify which values are correct, provide the raw measurements, and show that the component percentages sum consistently (e.g., holocellulose + lignin + wax + ash = 100% on a dry basis).
- [Results and Discussion, Mechanical properties and Table 2] The claim that S.S.F. tenacity (63±5 cN/tex) is 'significantly higher than that of cotton and jute fibres' is not supported by any statistical test or by reported sample sizes. The comparison uses single literature values for cotton, jute, flax, and other fibres without variance or replicate information, so the word 'significantly' is not justified. Similarly, the moisture content and chemical composition are reported without replicate counts or standard deviations. Please report n, mean ± SD, and, where comparative claims are made, perform an appropriate statistical comparison.
- [Results and Discussion, Structural analysis] The crystallinity index of 75% is computed with Segal's formula from XRD data, but the methods state 'No background correction was made' and the Mercury pattern comparison uses 'a PWHM value of 3' as an unstated fitting parameter. The paper also notes that the glass sample holder and other variables complicate precise crystallite-size quantification. Given these caveats, the 75% value should be presented with an explicit sensitivity analysis or replicate measurements; otherwise the headline crystallinity number is not robustly supported.
- [Conclusion (also Abstract and Highlights)] The statements that the fibre is suitable for thermal insulation and microbial fuel cell applications are presented as conclusions, but no direct measurements of thermal conductivity, water-vapor permeability, or microbial fuel cell performance are reported. The inference is drawn entirely from the hollow morphology and analogy to kapok and milkweed. This is acceptable as a 'potential' application hypothesis, but the current wording overstates the evidence; please restrict these claims to potential suitability and add a sentence indicating that direct application-specific tests are needed.
minor comments (6)
- [Abstract, Highlights, and Table 1] The moisture content is reported as 10.97% in the abstract and highlights but as 10.71% in Table 1; these values should be reconciled.
- [Results and Discussion, Chemical composition] The text contains the placeholder 'Click or tap here to enter text.' after 'hemicellulose 26.1%', indicating an unfinished manuscript; this should be removed.
- [Materials and Method, Thermal property analysis and Fig. 6] There are several typographical errors, e.g., 'Textile Texting and Quality Control Laboratory' should be 'Textile Testing and Quality Control Laboratory', 'represrnts' should be 'represents', and 'antoher' should be 'another'.
- [Materials and Method, Morphological structure of fibre] In the text defining the degree of thickness, the sentence 'The degree of thickness (θ) is calculated by the Eq. 6' refers to the wrong equation; it should cite Eq. (9).
- [References] Some references in the bibliography (e.g., Ref. [36]) do not appear to be cited in the text, and the reference list should be checked for citation order and completeness.
- [Results and Discussion, Morphological structure] The FESEM images appear to lack scale bars or magnification information in the text; scale bars and magnification should be stated for each micrograph.
Circularity Check
No significant circularity; this is an independent fibre characterization study, with only minor self-citations that are not load-bearing.
full rationale
The paper is a characterization study rather than a derivation chain: each headline quantity is obtained from a direct measurement or a standard instrumental analysis. Moisture content is computed from a drying-weight equation, tenacity from a stelometer measurement, crystallinity from Segal's formula applied to XRD data, morphology from FESEM, and chemical composition from wet-chemical biomass analysis. No parameter is fitted to a subset of the data and then used to 'predict' a closely related quantity, and no claimed result is defined in terms of another claimed result. The self-citations (Refs 12 and 49, which share author M. A. Uddin) are used for standard equations and comparative literature values, not as the evidence for the central measurements; the claim that S.S.F. tenacity exceeds cotton and jute rests on external literature values, not on the authors' own prior work. The paper does contain a serious internal inconsistency: Eq. 2 as written computes (W1 - W2)/W1, which is the fraction of mass removed, not the holocellulose remaining, and the abstract's 90.9% holocellulose also conflicts with Table 1's alpha-cellulose (64.4%) plus hemicellulose (23.1%) summing to 87.5%. That is a data-quality and arithmetic problem, not a circularity, because the number is not being derived from itself or from a fitted input. No circular step can be quoted with a specific reduction, so the circularity score is low.
Assumptions & free parameters
free parameters (1)
- Mercury XRD pattern broadening (PWHM) =
3
assumptions (4)
- domain assumption The LAPS biomass analytical protocol yields accurate holocellulose, alpha-cellulose, hemicellulose, and lignin fractions.
- domain assumption Segal's crystallinity index from a single XRD scan without background correction approximates the true crystallinity.
- domain assumption The single batch of fibre from Dhaka is representative of S. spontaneum flower fibre across the Indian subcontinent.
- ad hoc to paper Hollow fibre morphology transfers the thermal insulation and microbial fuel cell benefits of kapok and milkweed fibres to S.S.F.
Cite this review
Pith. "Pith review of Physical and chemical characterization of Saccharum spontaneum flower fibre: potential applications in thermal insulation and microbial fuel cells." pith.science (2026). https://pith.science/paper/EWUAYRFY
@misc{pith2026250105324,
author = {Pith},
title = {Pith review of: Physical and chemical characterization of Saccharum spontaneum flower fibre: potential applications in thermal insulation and microbial fuel cells},
year = {2026},
howpublished = {\url{https://pith.science/paper/EWUAYRFY}},
note = {Machine review of arXiv:2501.05324}
}
read the original abstract
Saccharum spontaneum is a grass-type plant abundantly found in the Indian subcontinent, known for its beautiful, lustrous white flowers. Fibres were extracted from the flower and analyzed for their physical, mechanical, and chemical properties. The chemical composition of the fibre is 90.9% holocellulose, with a moisture content of 10.97%, and an average fibre length of 25 mm. FTIR spectra confirmed the presence of functional groups similar to those found in other natural cellulosic fibres. Additionally, the fibre exhibits a tensile strength of approximately 63 cN/tex, which is significantly higher than that of cotton and jute fibres. However, its crystallinity is relatively high at about 75%, resulting in a low elongation at break of 1.9%. FESEM analysis revealed a hollow structure in the fibre, indicating its potential suitability for applications requiring high thermal insulation, excellent moisture management, vapor permeability, and microbial fuel cell development.
Reference graph
Works this paper leans on
-
[1]
New emerging natural fibres and relevant sources of information
Kozłowski RM, Mackiewicz-Talarczyk M, Barriga-Bedoya J. New emerging natural fibres and relevant sources of information. In: Handbook of Natural Fibres. Elsevier, 2020: 747–787
work page 2020
-
[2]
Banana agro-waste as an alternative to cotton fibre in textile applications
Khan A, Iftikhar K, Mohsin M, Ubaidullah M, Ali M, Mueen A. Banana agro-waste as an alternative to cotton fibre in textile applications. Yarn to fabric: An ecofriendly approach. Ind Crops Prod 2022; 189: 115687
work page 2022
-
[3]
Industrial hemp fiber: A sustainable and economical alternative to cotton
Duque Schumacher AG, Pequito S, Pazour J. Industrial hemp fiber: A sustainable and economical alternative to cotton. J Clean Prod 2020; 268: 122180
work page 2020
-
[4]
Natural, Fibers, Biopolymers and Biocomposites
Mohanty AK, Misra M, Drzal LT. Natural, Fibers, Biopolymers and Biocomposites. 2009
work page 2009
-
[5]
Critical factors on manufacturing processes of natural fibre composites
Ho M, Wang H, Lee J-H et al. Critical factors on manufacturing processes of natural fibre composites. Compos B Eng 2012; 43: 3549–3562
work page 2012
-
[6]
Characterization of raw and alkali treated new natural cellulosic fiber from Coccinia grandis.L
Senthamaraikannan P, Kathiresan M. Characterization of raw and alkali treated new natural cellulosic fiber from Coccinia grandis.L. Carbohydr Polym 2018; 186: 332–343
work page 2018
-
[7]
Physico-Chemical Properties of Fiber Extracted from the Flower of Celosia Argentea Plant
Manimaran P, Sanjay MR, Senthamaraikannan P et al. Physico-Chemical Properties of Fiber Extracted from the Flower of Celosia Argentea Plant. Journal of Natural Fibers 2021; 18: 464–473
work page 2021
-
[8]
Ganapathy T, Sathiskumar R, Senthamaraikannan P, Saravanakumar SS, Khan A. Characterization of raw and alkali treated new natural cellulosic fibres extracted from the aerial roots of banyan tree. Int J Biol Macromol 2019; 138: 573–581
work page 2019
Show all 56 references
-
[9]
Characteristics of cellulose extracted from Josapine pineapple leaf fibre after alkali treatment followed by extensive bleaching
Fareez IM, Ibrahim NA, Wan Yaacob WMH, Mamat Razali NA, Jasni AH, Abdul Aziz F. Characteristics of cellulose extracted from Josapine pineapple leaf fibre after alkali treatment followed by extensive bleaching. Cellulose 2018; 25: 4407–4421
2018
-
[10]
Ecofriendly and innovative processing of hemp hurds fibers for tissue and towel paper
Naithani V, Tyagi P, Jameel H, Lucia LA, Pal L. Ecofriendly and innovative processing of hemp hurds fibers for tissue and towel paper. Bioresources 2019; 15: 706–720
2019
-
[11]
Experimental studies on the physico-chemical properties of banana fibre from various varieties
Kiruthika A V., Veluraja K. Experimental studies on the physico-chemical properties of banana fibre from various varieties. Fibers and Polymers 2009; 10: 193–199
2009
-
[12]
Physical characteristics of Typha elephantina Roxb
Haq UN, Huraira A, Uddin MA. Physical characteristics of Typha elephantina Roxb. fiber ( Hogla ) for textile application. The Journal of The Textile Institute 2022; 113: 2328–2334
2022
-
[13]
Studies on the thermal properties of sisal fiber and its constituents
Martin AR, Martins MA, da Silva ORRF, Mattoso LHC. Studies on the thermal properties of sisal fiber and its constituents. Thermochim Acta 2010; 506: 14–19
2010
-
[14]
Characterization of New Natural Cellulosic Fiber from Heteropogon Contortus Plant
Hyness NRJ, Vignesh NJ, Senthamaraikannan P, Saravanakumar SS, Sanjay MR. Characterization of New Natural Cellulosic Fiber from Heteropogon Contortus Plant. Journal of Natural Fibers 2018; 15: 146–153
2018
-
[15]
Bioprocess preparation of wheat straw fibers and their characterization
Sain M, Panthapulakkal S. Bioprocess preparation of wheat straw fibers and their characterization. Ind Crops Prod 2006; 23: 1–8
2006
-
[16]
Characterization of natural cellulosic fiber from bark of Albizia amara
Senthamaraikannan P, Sanjay MR, Bhat KS, Padmaraj NH, Jawaid M. Characterization of natural cellulosic fiber from bark of Albizia amara. Journal of Natural Fibers 2019; 16: 1124–1131
2019
-
[17]
Characterization of New Natural Cellulosic Fiber from the Bark of Dichrostachys Cinerea
Baskaran PG, Kathiresan M, Senthamaraikannan P, Saravanakumar SS. Characterization of New Natural Cellulosic Fiber from the Bark of Dichrostachys Cinerea. Journal of Natural Fibers 2018; 15: 62–68
2018
-
[18]
Investigation into the physical–chemical properties of chemically pretreated sugarcane bagasse
Cruz G, Santiago PA, Braz CEM, Seleghim P, Crnkovic PM. Investigation into the physical–chemical properties of chemically pretreated sugarcane bagasse. J Therm Anal Calorim 2018; 132: 1039– 1053
2018
-
[19]
Characterization of Cassava Fiber of Different Genotypes as a Potential Reinforcement Biomaterial for Possible Tissue Engineering Composite Scaffold Application
Diabor E, Funkenbusch P, Kaufmann EE. Characterization of Cassava Fiber of Different Genotypes as a Potential Reinforcement Biomaterial for Possible Tissue Engineering Composite Scaffold Application. Fibers and Polymers 2019; 20: 217–228
2019
-
[20]
Cellulose-based composite scaffolds for bone tissue engineering and localized drug delivery
Janmohammadi M, Nazemi Z, Salehi AOM et al. Cellulose-based composite scaffolds for bone tissue engineering and localized drug delivery. Bioact Mater 2023; 20: 137–163
2023
-
[21]
Chitosan Composites Synthesized Using Acetic Acid and Tetraethylorthosilicate Respond Differently to Methylene Blue Adsorption
Essel T, Koomson A, Seniagya M-P et al. Chitosan Composites Synthesized Using Acetic Acid and Tetraethylorthosilicate Respond Differently to Methylene Blue Adsorption. Polymers (Basel) 2018; 10: 466
2018
-
[22]
Utilization of <scp> Mucuna atropurpurea </scp> stem fiber as a reinforcement in fiber reinforced plastics
Senthamaraikannan P, Saravanakumar SS. Utilization of <scp> Mucuna atropurpurea </scp> stem fiber as a reinforcement in fiber reinforced plastics. Polym Compos 2022; 43: 4959–4978
2022
-
[23]
Greener production of microcrystalline cellulose (MCC) from Saccharum spontaneum (Kans grass): Statistical optimization
Baruah J, Deka RC, Kalita E. Greener production of microcrystalline cellulose (MCC) from Saccharum spontaneum (Kans grass): Statistical optimization. Int J Biol Macromol 2020; 154: 672–682
2020
-
[24]
Komolwanich T, Tatijarern P, Prasertwasu S et al. Comparative potentiality of Kans grass (Saccharum spontaneum) and Giant reed (Arundo donax) as lignocellulosic feedstocks for the release of monomeric sugars by microwave/chemical pretreatment. Cellulose 2014; 21: 1327– 1340
2014
-
[25]
Pulping of bagasse (Saccrarum officinarum), kash (Saccharum spontaneum) and corn stalks (Zea mays)
Ferdous T, Quaiyyum MA, Salam A, Jahan MS. Pulping of bagasse (Saccrarum officinarum), kash (Saccharum spontaneum) and corn stalks (Zea mays). Current Research in Green and Sustainable Chemistry 2020; 3: 100017
2020
-
[26]
Extraction, characterization and thermal degradation kinetics with activation energy of untreated and alkali treated Saccharum spontaneum (Kans grass) fiber
Devnani GL, Sinha S. Extraction, characterization and thermal degradation kinetics with activation energy of untreated and alkali treated Saccharum spontaneum (Kans grass) fiber. Compos B Eng 2019; 166: 436–445
2019
-
[27]
Kaith BS, Jindal R, Jana AK, Maiti M. Development of corn starch based green composites reinforced with Saccharum spontaneum L fiber and graft copolymers – Evaluation of thermal, physico-chemical and mechanical properties. Bioresour Technol 2010; 101: 6843–6851
2010
-
[28]
Physicochemical Characterization of Native and Steam Explosion Pretreated Wild Sugarcane (Saccharum spontaneum)
Selvaraj A, Sriramulu G. Physicochemical Characterization of Native and Steam Explosion Pretreated Wild Sugarcane (Saccharum spontaneum). International Journal of Renewable Energy Development 2020; 9: 353–359
2020
-
[30]
Properties Characterization of Chemically Modified Hemp Hurds
Stevulova N, Cigasova J, Estokova A et al. Properties Characterization of Chemically Modified Hemp Hurds. Materials 2014; 7: 8131–8150
2014
-
[31]
Preparation and Characterization of Alpha Cellulose of Pineapple <i>(Ananas comosus)</i> Leaf Fibres (PALF)
Ibrahim NA, Azraaie N, Zainul Abidin NAM, Mamat Razali NA, Abdul Aziz F, Zakaria S. Preparation and Characterization of Alpha Cellulose of Pineapple <i>(Ananas comosus)</i> Leaf Fibres (PALF). Adv Mat Res 2014; 895: 147–150
2014
-
[32]
Ropemaking materials
McKenna HA, Hearle JWS, O’Hear N. Ropemaking materials. In: Handbook of Fibre Rope Technology. Elsevier, 2004: 35–74
2004
-
[33]
Crystal Structure and Hydrogen-Bonding System in Cellulose Iβ from Synchrotron X-ray and Neutron Fiber Diffraction
Nishiyama Y, Langan P, Chanzy H. Crystal Structure and Hydrogen-Bonding System in Cellulose Iβ from Synchrotron X-ray and Neutron Fiber Diffraction. J Am Chem Soc 2002; 124: 9074–9082
2002
-
[34]
An Empirical Method for Estimating the Degree of Crystallinity of Native Cellulose Using the X-Ray Diffractometer
Segal L, Creely JJ, Martin AE, Conrad CM. An Empirical Method for Estimating the Degree of Crystallinity of Native Cellulose Using the X-Ray Diffractometer. Textile Research Journal 1959; 29: 786–794
1959
-
[35]
Bestimmung der Größe und der inneren Struktur von Kolloidteilchen mittels Röntgenstrahlen
Scherrer P. Bestimmung der Größe und der inneren Struktur von Kolloidteilchen mittels Röntgenstrahlen. Nachrichten von der Gesellschaft der Wissenschaften zu Göttingen, Mathematisch-Physikalische Klasse 1918; 1918: 98–100
1918
-
[36]
Structural and Ecofriendly Holocellulose Materials from Wood: Microscale Fibers and Nanoscale Fibrils
Yang X, Berglund LA. Structural and Ecofriendly Holocellulose Materials from Wood: Microscale Fibers and Nanoscale Fibrils. Advanced Materials 2021; 33
2021
-
[37]
Properties and potential applications of natural cellulose fibers from cornhusks
Reddy N, Yang Y. Properties and potential applications of natural cellulose fibers from cornhusks. Green Chemistry 2005; 7: 190
2005
-
[38]
Characterization of New Natural Cellulosic Fibers – A Comprehensive Review
Arul Marcel Moshi A, Ravindran D, Sundara Bharathi SR, Suganthan V, Kennady Shaju Singh G. Characterization of New Natural Cellulosic Fibers – A Comprehensive Review. IOP Conf Ser Mater Sci Eng 2019; 574: 012013
2019
-
[39]
Morphological, structural, and thermal analysis of three part of Conocarpus cellulosic fibres
Jawaid M, Kian LK, Fouad H, Saba N, Alothman OY, Hashem M. Morphological, structural, and thermal analysis of three part of Conocarpus cellulosic fibres. Journal of Materials Research and Technology 2021; 10: 24–33
2021
-
[40]
Extraction and characterization of new natural lignocellulosic fiber Cyperus pangorei
Mayandi K, Rajini N, Pitchipoo P, Jappes JTW, Rajulu AV. Extraction and characterization of new natural lignocellulosic fiber Cyperus pangorei. International Journal of Polymer Analysis and Characterization 2016; 21: 175–183
2016
-
[41]
General scenarios of cellulose and its use in the biomedical field
Gopi S, Balakrishnan P, Chandradhara D, Poovathankandy D, Thomas S. General scenarios of cellulose and its use in the biomedical field. Materials Today Chemistry 13 2019 59–78
2019
-
[42]
Natural Fibres: Structure, Properties and Applications
Thomas S, Paul SA, Pothan LA, Deepa B. Natural Fibres: Structure, Properties and Applications. In: Cellulose Fibers: Bio- and Nano-Polymer Composites. Springer Berlin Heidelberg, 2011: 3–42
2011
-
[43]
Characterization of new cellulosic fiber from the stem of Sida rhombifolia
Gopinath R, Ganesan K, Saravanakumar SS, Poopathi R. Characterization of new cellulosic fiber from the stem of Sida rhombifolia. International Journal of Polymer Analysis and Characterization 2016; 21: 123–129
2016
-
[44]
A Comprehensive Review on Natural Fibers: Technological and Socio-Economical Aspects
Karimah A, Ridho MR, Munawar SS et al. A Comprehensive Review on Natural Fibers: Technological and Socio-Economical Aspects. Polymers (Basel) 2021; 13: 4280
2021
-
[45]
Study of the water vapor permeability of multiple layer fabrics containing the milkweed fibers as the middle layer
Zarehshi A, Ghane M. Study of the water vapor permeability of multiple layer fabrics containing the milkweed fibers as the middle layer. The Journal of The Textile Institute 2022; 113: 1531– 1537
2022
-
[46]
Lightweight, conductive hollow fibers from nature as sustainable electrode materials for microbial energy harvesting
Zhu H, Wang H, Li Y et al. Lightweight, conductive hollow fibers from nature as sustainable electrode materials for microbial energy harvesting. Nano Energy 2014; 10: 268–276
2014
-
[47]
A Method of Fibre-Length Analysis Using the Fibrograph
Hertel KL. A Method of Fibre-Length Analysis Using the Fibrograph. Textile Research 1940; 10: 510–520
1940
-
[48]
Milkweed—A Potential Sustainable Natural Fibre Crop
Karthik T, Murugan R. Milkweed—A Potential Sustainable Natural Fibre Crop. In: 2016: 111–146
2016
-
[49]
Extraction and Characterization of Antimicrobial surgical Suture from the bast of Tinospora Cordifolia
Das SC, Uddin MA. Extraction and Characterization of Antimicrobial surgical Suture from the bast of Tinospora Cordifolia. Journal of Natural Fibers 2022; 19: 11235–11245
2022
-
[50]
Fibers for Technical Textiles
Ahmad S, Ullah T, Ziauddin. Fibers for Technical Textiles. In: 2020: 21–47
2020
-
[51]
Comfort Analysis of Woven Cotton/Polyester Fabrics Modified with a New Elastic Fiber, Part 1 Preliminary Analysis of Comfort and Mechanical Properties
Verdu P, Rego JM, Nieto J, Blanes M. Comfort Analysis of Woven Cotton/Polyester Fabrics Modified with a New Elastic Fiber, Part 1 Preliminary Analysis of Comfort and Mechanical Properties. Textile Research Journal 2009; 79: 14–23
2009
-
[52]
Infrared spectrum and crystal structure of cellulose
Tsuboi M. Infrared spectrum and crystal structure of cellulose. Journal of Polymer Science 1957; 25: 159–171
1957
-
[53]
Effect of fiber content and type, compatibilizer, and heating rate on thermogravimetric properties of natural fiber high density polyethylene composites
Tajvidi M, Takemura A. Effect of fiber content and type, compatibilizer, and heating rate on thermogravimetric properties of natural fiber high density polyethylene composites. Polym Compos 2009; 30: 1226–1233
2009
-
[54]
Study on a Novel natural cellulosic fiber from Kigelia africana fruit: Characterization and analysis
Siva R, Valarmathi TN, Palanikumar K, Samrot A V. Study on a Novel natural cellulosic fiber from Kigelia africana fruit: Characterization and analysis. Carbohydr Polym 2020; 244: 116494
2020
-
[55]
Surface and thermal characterization of natural fibres treated with enzymes
George M, Mussone PG, Bressler DC. Surface and thermal characterization of natural fibres treated with enzymes. Ind Crops Prod 2014; 53: 365–373
2014
-
[56]
Natural Fibres: Structure, Properties and Applications
Thomas S, Paul SA, Pothan LA, Deepa B. Natural Fibres: Structure, Properties and Applications. In: Cellulose Fibers: Bio- and Nano-Polymer Composites. Berlin, Heidelberg: Springer Berlin Heidelberg, 2011: 3–42
2011
-
[57]
Mechanical, Thermal and Interfacial Properties of Jute Fabric-Reinforced Polypropylene Composites: Effect of Potassium Dichromate
Khan JA, Khan MA, Islam R, Gafur A. Mechanical, Thermal and Interfacial Properties of Jute Fabric-Reinforced Polypropylene Composites: Effect of Potassium Dichromate. Materials Sciences and Applications 2010; 01: 350–357
2010
Reviewed August 10, 2026 · model on record in the stance chip above.
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