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34 Herbal Pharmacopeia
Martínez- Graciá, C., etal. (2015). “Use of herbs and spices for food preservation: Advantages and limitations.”
6: 38–43. McCabe, A. (2009). “19. Imported materia medica, 4th—12th centuries, and Byzantine pharmacology.” Mukherjee, P. K., etal. (2015). Bioavailability of herbal products: approach toward improved pharmacokinet-
ics. Evidence- based validation of herbal medicine, Elsevier: 217–245. Muyumba, N., etal. (2021). “Quality control of herbal drugs and preparations: The methods of analysis, their
relevance and applications.” 4: 100070. Nasim, N., etal. (2022). “Plant- derived natural products for drug discovery: current approaches and pros-
pects.” 65(3): 399–411. Naumovic, S., etal. (2014). “From plant materials to quality herbal products.” 121. Némethy, S., etal. (2020). “Collection, cultivation and processing of medical plants, herbs and spices in the
Balaton Ecomuseum–herbal medicine as intangible cultural heritage.” 6(1): 52–87. Nigam, M. (2021). Phytomedicine: Scope and current highlights. Preparation of Phytopharmaceuticals for the
Management of Disorders, Elsevier: 39–54. O'Hara, M., etal. (1998). “A review of 12 commonly used medicinal herbs.” 7(6): 523. Oberhelman, S. M. (2020). Healing Manuals from Ottoman and Modern Greece: The Medical Recipes of
Gymnasios Lauriotis in Context. Walter de Gruyter GmbH & Co KG. Organization, W. H. (2009). The use of herbal medicines in primary health care, WHO Regional Ofce for
South- East Asia. Pagare, S., etal. (2015). “Secondary metabolites of plants and their role: Overview.” 9(3): 293–304. Pan, S.-Y., etal. (2014). “Historical perspective of traditional indigenous medical practices: the current renais-
sance and conservation of herbal resources.” 2014(1): 525340. Pengelly, A. (2020). The constituents of medicinal plants: an introduction to the chemistry and therapeutics of
herbal medicine, Routledge. Pouyan, N. W. J. O. P. R. (2016). “Mesopotamia, the cradle of civilization and medicine.” 5(4): 192–225. Qadir, S. U. and V. Raja (2021). Herbal medicine: Old practice and modern perspectives. Phytomedicine,
Elsevier: 149–180. Rakow, D. A. and S. A. Lee H. R. V. (2015). “Western botanical gardens: history and evolution.” 269–310. Russo, E. B. and A. Dougherty (2013). Herbal voices: American herbalism through the words of American
herbalists, Routledge. Sams, T. (2015). Healing Herbs: A Beginner's Guide to Identifying, Foraging, and Using Medicinal Plants/
More Than 100 Remedies from 20 of the Most Healing Plants, Fair Winds Press (MA). Sarkar, M. and P. Chawla (2022). Curative Properties of Chamomile in Gastrointestinal Disorders. Herbs,
Spices, and Medicinal Plants for Human Gastrointestinal Disorders, Apple Academic Press: 125–140. Sayed, S. F. (2023). Herbal drugs as antibiotics. Antibiotics- Therapeutic Spectrum and Limitations, Elsevier:
479–532. Schiødt, S. Z. F. Ä. S. U. A. (2023). ““Its Leaves Are Like the Daughter of the Willow”: The Herbal Genre in
Ancient Egypt.” 150(2): 263–280. Sharma, A., etal. (2021). Herbal medicine—An introduction to Its history. Herbal Medicine in Andrology,
Elsevier: 1–8. Sheng, P., etal. (2019). “Archaeobotanical evidence for early utilization of cockleburs (Xanthium strumarium
L., Asteraceae) in the Xinjiang Uyghur Autonomous Region of China.” 11: 2027–2038. Singh, A. K. P. G. R. (2016). “Exotic ancient plant introductions: part of Indian ‘Ayurveda’ medicinal system.”
14(4): 356–369. Stapley, C. (2023). A History of Plant Medicine: Western Herbal Medicine from the Ancient Greeks to the
Modern Day, Aeon Books. Staub, P. O., etal. (2016). “Back to the roots: A quantitative survey of herbal drugs in Dioscorides’ De Materia
Medica (ex Matthioli, 1568).” 23(10): 1043–1052. Surve, M. V., etal. (2024). “A review on current scenarios of pharmaceutical and herbal medicine and future
prospects.” 27(2): 049–059. Tachjian, A., etal. (2010). “Use of herbal products and potential interactions in patients with cardiovascular
diseases.” 55(6): 515–525. Thakkar, S., etal. (2020). “Regulatory landscape of dietary supplements and herbal medicines from a global
perspective.” 114: 104647. Tobyn, G., etal. (2010). The Western Herbal Tradition E- Book: The Western Herbal Tradition E- Book, Elsevier
Health Sciences. Upadhyay, B., etal. (2007). “Traditional uses of medicinal plants among the rural communities of Churu
district in the Thar Desert, India.” 113(3): 387–399.
Historical Development of Herbal Medicine 35
Verma, N. J. C. R. and R. Affairs (2016). “Current regulatory challenges and approaches in the registration of
herbal drugs in Europe.” 33(1): 9–24. Voeks, R. A. A. O. T. A. O. A. G. (2004). “Disturbance pharmacopoeias: medicine and myth from the humid
tropics.” 94(4): 868–888.
Von Klein, C. H. J. O. T. A. M. A. (1905). “The Medical Features of the Papyrus Ebers.” 45(26): 1928–1935. Wachtel- Galor, S. and I. F. Benzie (2012). “Herbal medicine: an introduction to its history, usage, regulation,
current trends, and research needs.” Wahlberg, A. (2006). Modernisation and its side effects: an inquiry into the revival and renaissance of herbal
medicine in Vietnam and Britain, London School of Economics and Political Science. Weindling, P. J. M. T. H. (2004). “From germ theory to social medicine.” 239. Winkelman, M. J. J. O. A. M. (2022). “An ethnological analogy and biogenetic model for interpretation of
religion and ritual in the past.” 29(2): 335–389. Zhan, M. J. S. T. H. V (2014). “The empirical as conceptual: Transdisciplinary engagements with an “experi-
ential medicine”.” 39(2): 236–263. Zhang, J., etal. (2012). “Quality of herbal medicines: challenges and solutions.” 20(1–2): 100–106. Zhao, J., etal. (2019). “Improvement strategies for the oral bioavailability of poorly water- soluble avonoids:
An overview.” 570: 118642. Zhou, X., etal. (2019). “Current status and major challenges to the safety and efcacy presented by Chinese
herbal medicine.” 6(1): 14. Žuškin, E., etal. (2008). “Ancient medicine- a review.” Acta Dermatovenerologica Croatica, 16(3): 0–0.
Modern Techniques in Herbal
3
Extraction and Analysis
Sadaf Javaria
Institute of Food science and Nutrition, Gomal University, D.I. Khan, Pakistan
Muhammad Zareef
School of Food and Biological Engineering, Jiangsu University, Zhenjiang, China
Muhammad Nadeem
Institute of food science and Nutrition, University of Sargodha, Sargodha, Pakistan

3.1 INTRODUCTION

Since ancient communities, phytochemicals from plant sources have beneted many communities around the world. Healthcare systems use metabolites as drugs in the management of various dis­eases. Additionally, phytochemicals are utilized as lead compounds in the synthesis of medicines. The chapter gives an overview of updated methodologies for the extraction, isolation, and analysis of bioactive compounds from herbal sources in relation to the keen interest in therapeutic value concern­ing naturally occurring phytochemicals of plant origin (Abubakar & Haque 2020). Products of herbal origin in medical applications have been used since time immemorial; however, modern technologies drove this very ancient practice into a new era of precision (Dastangoo et al., 2020). It calls, therefore, for the adoption of more sensitive and advanced extraction methods in the identication and exploi­tation of this bank of phytochemicals in herbs that can be used as medicine (Abhari & Khaneghah
2020). The chapter thus acts as a single tool for researchers, practitioners, and aspirants in the industry who mean to direct state- of- the- art methodologies in herbal extraction and analysis toward drug dis­covery, quality control, and the development of evidence- based herb formulations. It has done so by pulling together theoretical underpinning, helpful methodologies, and incipient trends.

3.2 HERBAL EXTRACTION

Extraction in herbalism is one of the most important processes in releasing the potent core of botani­cal blessings. To harness the potential of herbs, one needs to know and work under the rules of extraction. Here, it is dened what the basic conception of herbal extraction, solvent, variables of the extraction efciency, and principles are.
3.2.1 P
Essentially, extraction is a procedure of separating the active ingredient from the matrix of the plant. The technique can be proven to arise out of the basic concepts of physics and chemistry. The basic premise of extraction is the concept of solubility, which can be described as the capability of
36
rinciPles of extraction
: U
nlocking natUre’s BoUnty
Modern Techniques in Herbal Extraction and Analysis 37
a compound to dissolve well in a solvent. Hence the nature of what is extracted, and the amount of its extraction from the matrix into the solvent, is based on the extractability of the solute in the solvent. For example, alkaloids and avonoids are pungent compounds that nd solace in dissolving in polar solvents such as ethanol or water. On the other hand, more non- polar substances from the plants, which are essential oils, are effectively extracted by a non- polar solvent like hexane or ether. Another subsection of the principal part is diffusion, which is the process by which the molecules go from an area of high concentration to one of lower concentration (Brunner, 2005). It is as if they are spreading out to achieve a uniform concentration. This helps to ensure that the diffusion process extracts all of the compounds from the plant material. Among the basic scientic concepts that arise from this focus on the areas of chemistry and physics are solubility, diffusion, and mass transfer. These are essentially the principles employed to extract the active compound from herbs. Let us delve a little further into each of these topics.
1. Solubility: Solubility refers to the ability of a solute to dissolve in a solvent to form a
solution. Each solute and solvent pair has a specic saturation point, beyond which no further solute can dissolve. During plant material extraction with a solvent, the release of plant material involves the extraction of various compounds. The quantities of these extracted compounds depend on their solubility in the chosen solvent. The degree of solu­bility depends on their composition, with different substances having different solubility. Meanwhile, nonpolar compounds, such as essential oils, are well extracted in nonpolar sol­vents such as hexane or ether, whereas polar compounds, such as alkaloids, avonoids, and sugars, prefer better solubilization in polar solvents like water or ethanol (Li et al., 2012). Selecting the solvent for best extraction requires knowledge of the nature of solubility of the target compound.
2. Diffusion: This is the process by which the solute or, in some cases, even the solvent
molecules are pushed into the solution from a high concentration of the solute to a lower concentration of the conditioning solvent. Importantly, this process works toward equili­brating the solutes and conditioning solvents, hence pushing the solutes in the solvent into it (Adegbola et al., 2017). This allows complete extraction of plant material in compounds in herbal extraction. During the extraction process, targeted compounds are dissolved into the solvent phase from the plant matrix. The rate of diffusion depends on numerous factors, such as particle size, the characteristics of the solvent, temperature, and agitation (Afroz et al., 2015). To control and optimize these mentioned factors improves the diffusion and hence an increase in the extraction efciency.
3. Mass Transfer: This process refers to the transfer of solutes among phases, such as from
solid plant material to a liquid solvent. The mechanism of mass transfer between solid plant material and the solvent phase, thus controls the dissolution and diffusivity mechanism of the target chemicals in terms of their extraction from the plant matrix and During desorp­tion, the chemical compounds are released from the plant surface into the solvent For instance, dissolution is the process that relates to the solubilization of molecules in a sol­vent; and diffusion is what allows the molecules to move around freely in the solvent (Chen et al., 2011). In the same article, Chen and his colleagues proceeded to describe desorption process as chemicals migrating from the plant’s surface and moving into a liquid.
The net effect of this means, therefore, is that efcient mass transfer will proceed when the prin­ciples are followed by high extraction yields because a value addition aspect will make extractions of the targeted species very complete (Dababi, et al., 2020). It may also repay even those herbalists who want to extract more than they need of some components without contaminating their extracts with unwanted substances. Indeed, this optimization of the extraction conditions, based on param­eters such as solubility by diffusivity and mass transport rate, may enable the attainment of bioactive chemical- rich extracts that have been shown in the past to produce desirable medicinal effects.
38 Herbal Pharmacopeia

3.2.2 choice: solvent selection of a sUitaBle MediUM

Menstruum is a solvent that is used for the extraction of compounds in the medicinal plant. Selecting an appropriate solvent is one of the best solutions to proper extraction efciency. The choice of menstruum depends very much on the type of the herb, on the part of the herb from which extraction is to be done, and the nature of the biologically active compounds. Generally, polar solvents such as water, methyl alcohol, or methanol and ethyl alcohol or ethanol are used for the extraction of polar compounds; for nonpolar compounds, hexane, and dichloromethane are used. In liquid- liquid extraction, two miscible solvents are taken, for example, water and dichloromethane; water- hexane; water- ether, etc. In all mixtures, however, water is an indispensable component because of its high polar power and its miscibility with organic solvents (de Menezes Rodrigues et al., 2017).
Properties of the Solvent
Water: Water is considered a solvent that is universal. In the extraction of polar compounds,
water is considered to be the most popular polar solvent. It is cheap, dissolves a broad range of solvents, is highly polar, and is non- ammable and non- toxic (Zahari et al., 2020). However, it also has some disadvantages: it promotes microbial growth, it may cause hydro­lysis and a large amount of heat is required in case of concentrating the extract of water.
Alcohol: Alcohol is polar in nature like water, also. The miscibility in water is excellent and
has a property of extracting polar secondary metabolites. When its concentration exceeds 20%, then it acts as a natural self- preservative, but it is nontoxic in lower concentrations. Unlike water, a little heat is called for in extracting the concentrate but none of the fats, waxes, and gums are soluble in it. Alcohols are volatile and ammable.
Chloroform: This is non- polar in nature. It is extensively used in the extraction of fats, oils,
terpenoids, and avonoids, and so on. Chloroform is soluble in alcohols, has a sweet smell, and is colorless. However, used widely and in large quantities, it has a mild sedative effect. It has recently been reported to have carcinogenic properties (Zhang et al., 2018).
Ether: The solvent is non- polar and has been used in extracting alkaloids, terpenoids couma-
rins and fatty acids. It is water- soluble and tasteless, and has a low boiling point. It is also a very stable and not reactive compound given that it doesn’t react with acids, bases, and metals. However, it is very volatile and ammable (Díaz- Batalla et al., 2006).
Extraction efciency: factors affecting maximum yield and quality Solvent is an important
factor inuencing efciency, selectivity, and safety in the extraction process, and thus criti­cally affects overall herbal extraction. In pharmacopeia, the alcohols used as solvents are specied, but various parameters have to be considered in selecting a solvent appropriate for extracting with herbs (Diep, et al., 2020). We shall consider them in detail.
Herb extraction is a complex process in which many levels of interactions blend to nally determine how well one can extract targets out of one’s material. High efciency in extraction is essentially required to maximize yield, keep optimum product quality, and, above all, to minimize the use of resources.
The following factors are responsible for this phenomenon:
1. Particle Size: This is the particle size for which the herbal material is composed that domi-
nates the efciency of extraction.
Crushing to a ne powder exposes a large surface area for the permeation of the solvent into the particle and also increases the contact of the solvent with the target compounds or solutes. Since divalent ions and carboxylates cannot interdiffuse, a higher surface needs to be achieved. The ner particle sizes present an increased rate and higher yield of extraction compared to a larger surface area. For this reason, the herbal materials must be ground or milled accordingly so as to maximize the efciency of their extraction.
Modern Techniques in Herbal Extraction and Analysis 39
2. Temperature: The temperature is known to signicantly inuence kinetics involved in extraction by changing solvent solubility and diffusivity, apart from chemical reactions.
Generally, high extraction temperatures enhance the rate of mass transfer by increasing the solvent’s capacity to dissolve solutes, thereby accelerating the kinetics of the process. However, if the temperature goes beyond a certain limit, the destruction of the thermolabile stuff occurs, causing the synthesis of unwanted byproducts (Dymek et al., 2021). Optimal temperatures have to be selected carefully between target compound stability and its rate of extraction within a reasonable period.
3. The Extraction Time: This clearly determines the yield and composition of the nal extract. The extraction times clearly determine the concentration of extracted compounds. Unwanted compounds may be extracted or degradation of heat- labile components takes place within an extended extraction time (Fomo et al., 2020). Crude time, such as a long extraction time in favor of a longer duration, allows for the diffusion and equilibrium of solutes. Balance of these two assures best possible yield with good quality extracts.
4. Solvent Volume- to- Raw Material Ratio: The ration of the volume of the solvent to the material plays a factor in terms of how well the compound will be extracted, as this will determine the velocity and penetration of the solvent into the particles and hence will simultaneously affect the rate of dissolution of the compound.
There is a general rule of thumb that dictates that the greater this ratio of solvent to material used, the more efcient the extraction will actually be, because the available quan­tity of solvent is increased as is the mass transfer rate (Geng et al., 2015). However, this tends to escalate processing costs and environmental concerns in case too many solvents are used for that purpose. The optimization of the ratio between the solutes and the liquid medium is required in order to get the maximum extraction efciencies but also the mini­mum solvents for the extraction process.
5. pH: The pH of the extraction medium mostly affects the ionization state and the solubility of some of the compounds amounting to their extraction efciency.
At specic pH levels, some substances, in particular, exhibit high solubilities whereas others undergo chemical decompositions or precipitation. Modication of the pH of the extracting solvent to be in line with this range can hence be used to enhance extraction selectivity as well as efciency. Alkaloids, phenolics, and organic acids are mostly picked in herbal substances (Zygler et al., 2012).
6. Agitation: In mass transfer, we need agitation to achieve adequate permeation of the sol- vent through the plant matrix, thereby enabling the effective exposure of the desired com­pounds during extraction.
This will, however, be greatly enhanced by mechanical stirring, shaking, or agitation through the use of ultrasound, among others, which increases the rate at which extraction occurs because of increased surface area available for contact with the solvent and, there­fore, the diffusing mass transfer resistance (Omeroglu et al. 2019). The proper observation of such agitation techniques allows the proper mixture circulation, thereby achieving an even mixture and maximizing yields from the extractions process.
7. Plant Variability: Different types of plants, variation within plant species, how they are grown, and how they are harvested all lead to a difference in the composition and concen­tration of benecial compounds in the herbal materials.
This makes the extraction process complicated; hence, it is just as important to decide on plants under standardized methods of extraction so that there is always consistency in quality and effective results. These criteria include the age of the plants, its habitat, and the way it is to be handled after harvesting (Omeroglu et al. 2019).
8. The Method of Extraction: The extraction method to be used for the extraction of compounds from your herbal material is of great concern with regard to efciency in extraction.
40 Herbal Pharmacopeia
There are some commonly available methods, which include maceration, percolation, Soxhlet extraction, supercritical uid extraction, and ultrasound- assisted extraction. Each method, therefore, achieves a balance between efciency, selectivity, and processing time (Tsao and Deng Z., 2004). The selection of the appropriate extraction method in relation to the nature of the herbal material and the desired product characteristics are thus very essential and play a crucial role in gaining good results from an extraction process.
1. Modern Extraction Techniques
• Supercritical Fluid Extraction (SFE)
• Microwave- Assisted Extraction (MAE)
• Ultrasound- Assisted Extraction (UAE)
• Pressurized Liquid Extraction (PLE)
• Subcritical Water Extraction (SWE)

3.3 SUPERCRITICAL FLUID EXTRACTION (SFE)

Supercritical Fluid Extraction (SFE) is a technique which is used for the extraction of specic com­ponents from the source or material, in which supercritical uids act as the extracting solvent. In other words, SFE is a process of separating extract from the matrix with the help of supercritical uids which act as an extracting solvent.
A supercritical uid is an enormously compressed uid that signies the properties of both gases and liquids. They are created by raising temperature and pressure beyond the critical point of a sub­stance. These have high density and are non- compressible (Shinde et al., 2009).
Supercritical uids (SF) have exclusive characteristics whereby they can diffuse through solids like a gas and simultaneously be able to dissolve materials like a liquid. The most common super­critical uids in use within modern industry are carbon dioxide and water. Carbon dioxide is the SF which is most commonly used for extraction purposes, because it has relatively low critical tempera­ture and pressure. It is also non- toxic and readily available.

3.3.1 Working PrinciPle of sfe

The working principle of Supercritical Fluid Extraction relies on the unique characteristics of super­critical uids. When the substance is heated above its critical temperature and critical pressure, it changes into a supercritical state where it shows the characteristics of both liquids and gases. At this stage, the uid can penetrate the solid material and can dissolve the desired components effectively.

3.3.2 Parts of the sfe systeM

1. Pump: A pump is used to pressurize the carbon dioxide and convey it to the extraction
vessel.
2. Extractor: The extraction vessel in which the raw materials (the herbs) are kept. Here the
supercritical carbon dioxide interacts with the material for the extraction of the desired compounds.
3. Heater: The heater maintains the desired temperature at which the carbon dioxide remains
in its supercritical state.
4. Separator: Once the extraction process is completed, the carbon dioxide and the extracted
compounds are transferred to the separator where the pressure is decreased, and the carbon dioxide is reverted to the gas, leaving the extract to separate out.
5. Condenser: This apparatus condenses the carbon dioxide gas back into its liquid form for
reuse in the system.
6. Flow Meter: This monitors and controls the rate of carbon dioxide.
Modern Techniques in Herbal Extraction and Analysis 41
FIGURE 3.1 Method of extraction from herbs using SFE.

3.3.3 Process of extraction

1. Selection of Herbs: For extraction, the herbs which pose essential oils or active com-
pounds are selected.
2. Preparation: In the SEF of herbs fresh plant material is used commonly. When a fresh
sample is extracted from herbs, it contains a high degree of moisture. This could result in mechanical difculties, for example, the restrictor may become clogged because of ice for­mation. To avoid this problem, the solution is mixed with anhydrous Na2SO4 (Figure 3.1).
3. Grinding: The raw material (herbs) is ground into a ne powder to enhance surface area
for extraction.
4. Loading: The powdered herbs are loaded into the extractor vessel through a pump which
exerts high pressure.
5. Pressurization: CO₂ is pumped into the extractor vessel and heated to reach its supercriti-
cal state.
6. Extraction: The supercritical CO₂ penetrates the herb matrix and dissolves the target
compounds.
7. Separation: The mixture of CO₂ and dissolved compounds is transferred to the separator,
where the pressure is lowered. The CO₂ becomes gaseous and separates from the extracted compounds.
8. Collection: The extract is collected from the separator.
9. Recycling: The gaseous CO₂ is condensed back to a liquid state and recycled back into the
system.

3.3.4 aPPlications

1. It is used for the extraction of compounds used in avours, fragrances, and essential oils.
2. It is used for the extraction of bioactive compounds from herbs, which are used in nutra-
ceuticals and pharmaceutical products.
3. It is also used for the purication of natural compounds and products
42 Herbal Pharmacopeia

3.4 MICROWAVE- ASSISTED EXTRACTION (MAE)

Microwave- Assisted Extraction (MAE) is a method which is used for the extraction of bioactive compounds from raw materials such as herbs and plants through the use of microwave energy. Microwave energy has the strong ability to warm up solvents and plant materials in a very short time for the extraction of required compounds. Heat is generated following ionic conduction and dipole rotation mechanism through microwaves by interacting with polar compounds for example water and organic components in the plant medium. In MAF, heat and mass are transferred in the same path which creates a synergistic effect, this quickens the extraction process, and extraction yield is also improved. It is also regarded as a “green technology” because in the MAE process the usage of organic solvent is decreased. There are two types of Microwave- Assisted Extraction method:
1. Solvent- free extraction: usually used for volatile compounds.
2. Solvent extraction: usually used for non- volatile compounds.

3.4.1 Working PrinciPle

The MAE works on the principle that with microwave radiations polarizable materials and dipoles of polar solvent are changed. Microwaves are a type of electromagnetic radiations which have frequen­cies ranging from 300 MHz to 300 GHz. The polar molecules and ions in the solvent and plant mate­rial are oscillated when microwaves are applied to the plant material and heat is produced through dipole rotation and ionic conduction. The mass transfer rate, breaking the cell walls of plant material and releasing the required compounds into the solvent, are enhanced due to this localized heating .

3.4.2 coMPonents of a MicroWave- assisted extraction systeM

1. Microwave Generator: This part of microwave- assisted extraction system generates
microwaves of a specic frequency. A frequency of 2450 MHz is generally used for MAE.
2. Microwave Cavity: It is extraction chamber. The microwave cavity is made to contain and
homogeneous reection of microwaves.
3. Sample Holder: This is a container which holds the plant/herb material and extraction
solvent during the process of extraction.
4. Temperature and Pressure Sensors: The temperature and pressure inside the extraction
chamber can be monitored and controlled to provide and ensure the optimum extraction conditions.
5. Cooling System: This keeps the temperature within safe limits to avoid the decomposition
or degradation of required compounds.
6. Magnetic Stirrer: This ensures the homogenous mixing of the solvent and sample to
increase extraction efciency.
7. Control Unit: This is the unit that manages temperature, pressure, microwave power and
extraction time settings.

3.4.3 Method of extraction froM herBs By Mae

1. Preparation of Plant Material: Herbs are washed, dried, and ground up to make a ne
powder to increase the surface area for extraction. Dried plant material still contains traces of moisture, which acts as a target for microscopic heating.
2. Selection of Solvent: A proper and well- suited solvent which must be transparent is chosen
on the basis of polarity of required compounds. The solvent used must be transparent to microwave radiation to ensure efcient absorption by the sample. Commonly used solvents include water, ethanol, methanol, or their mixtures.
Modern Techniques in Herbal Extraction and Analysis 43
Flow chart of MAE process
High pressure application on the cell wall of plant material
Oozing out of required components.
Application of microwave radiations
Heating and evaporation of moisture
Swelling and rupturing of cell wall of plant material
FIGURE 3.2 Flow chart diagram of Ultrasound- Assisted Extraction (UAE).
↓
↓
↓
↓
3. Loading the Sample: In the sample holder, a prepared sample of herb is placed along with
the chosen solvent.
4. Microwave Treatment: The cavity sample holder is placed in the microwave. The micro-
wave generator is turned on and the microwave increases the temperature of the sample quickly by penetrating in it. This results in the dehydration of the cellulose of the plant material as the temperature increases. This reduces its mechanical strength.
5. Extraction Process: The cell walls of the herb’s material are ruptured due to localized
heating. It helps to release the bioactive compounds into the extraction solvent. The yield and quality of the extracted compounds could be enhanced by the adjustment of extraction time and microwave power (Figure 3.2)
6. Cooling and Filtration: The mixture is cooled after extraction is completed. Then
it is ltered to separate the plant residue from the solvent containing the extracted compounds.
7. After the extraction process, the mixture is allowed to cool. It is then ltered to separate
the solvent containing the extracted compounds from the plant residue. After the extraction process, the mixture is allowed to cool. It is then ltered to separate the solvent containing the extracted compounds from the plant residue.
8. Concentration and Purication: The obtained extract could be concentrated by evaporat-
ing the solvent, while the isolation of desired compounds will require additional purica­tion steps.

3.5 ULTRASOUND- ASSISTED EXTRACTION (UAE)

Ultrasound waves: the waves which have exceeded the audible frequency range > 20 kHz are desig­nated as ultrasound waves. When these waves pass and spread through the medium, the compression and rarefaction of particles of the medium results. UAE technique could be combined either with temperature called “thermosonication” or pressure “manosonication.”
Ultrasound- assisted extraction is the technique in which the application of ultrasonic waves improves the extraction of bioactive compounds from a wide range of material herbs. This method improves efciency and extraction yield by using sound waves of high frequency which create cavi­tation bubbles in the solvent used for extraction. It then bursts on the surface of plant matrix, a shock damage to plant call wall increases the mass transfer of required compounds from the call membrane into the solution.

3.5.1 Working PrinciPle

This phenomenon of UAE works on the principle of cavitation. This phenomenon is created when ultrasonic waves pass through a liquid; cycles of high and low pressure are developed. In the cycle