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		<title>Trends in Electromagnetic Interference (EMI) Shielding</title>
		<link>https://ttconsultants.com/electromagnetic-interference-emi-shielding/</link>
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		<dc:creator><![CDATA[Mudit Thakur]]></dc:creator>
		<pubDate>Mon, 16 May 2022 07:37:11 +0000</pubDate>
				<category><![CDATA[Articles]]></category>
		<category><![CDATA[Electromagnetic Interference (EMI)]]></category>
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<p>The post <a href="https://ttconsultants.com/electromagnetic-interference-emi-shielding/">Trends in Electromagnetic Interference (EMI) Shielding</a> appeared first on <a href="https://ttconsultants.com">TT CONSULTANTS</a>.</p>
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									<p>Electromagnetic radiations have become ubiquitous with the recent advancements in handheld portable electronic gadgets and highly integrated microwave circuits. </p><p>The interference created by these undesired electromagnetic radiations can cause unacceptable degradation of system or equipment performance, information leakage, and even complete system failure. Harmful impacts of electromagnetic radiation associated with emerging technologies such as internet-of-things (IoT), 5G, etc., on living organisms.</p><p><b><span data-contrast="auto">Scientists have shown that exposure to electromagnetic radiation cause insomnia, nervousness, languidness, and skin problems in human beings. </span></b><span data-contrast="auto">The impact of high-frequency radiation on biological entities, biological processes, and plants is also under investigation. </span></p><p><span data-contrast="auto">Furthermore, shielding in the high-frequency range has become critical in recent times, due to the utilization of GHz frequency bands in state-of-the-art technologies. For example, 5G technology uses few carrier frequencies in the </span><i><span data-contrast="auto">K</span></i><span data-contrast="auto">, and </span><i><span data-contrast="auto">Ka</span></i><span data-contrast="auto">-frequency bands which were not otherwise used in the earlier generation wireless telecommunication technologies. </span><span data-ccp-props="{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:160,&quot;335559740&quot;:259}"> </span></p><p><span data-contrast="auto">Furthermore, the future requirements also motivate scientists to work on the latest concepts in the EMI shielding technology, such as the development of flexible thin shields for use in </span><b><span data-contrast="auto">smart fabrics</span></b><span data-contrast="auto">. Similarly, next-generation technologies require shielding materials with advanced features of tunability and frequency-selectivity.</span><span data-ccp-props="{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:160,&quot;335559740&quot;:259}"> </span></p>								</div>
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															<img fetchpriority="high" decoding="async" width="768" height="610" src="https://ttconsultants.com/wp-content/uploads/2022/05/1-1-768x610.png" class="attachment-medium_large size-medium_large wp-image-32851" alt="EMI Shielding in Electronic Devices" srcset="https://ttconsultants.com/wp-content/uploads/2022/05/1-1-768x610.png 768w, https://ttconsultants.com/wp-content/uploads/2022/05/1-1-300x238.png 300w, https://ttconsultants.com/wp-content/uploads/2022/05/1-1.png 859w" sizes="(max-width: 768px) 100vw, 768px" />															</div>
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									<p><strong>Figure 1. EMI Shielding in Electronic Devices</strong></p>								</div>
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									<p><span data-contrast="none">Under such a scenario, researchers worldwide are making substantial efforts to develop high-performing shielding materials with advanced features and shielding capabilities over the GHz frequency range, to mitigate electromagnetic pollution. </span></p><p><span data-contrast="none">Some electric industries have even set up (EMC) Electromagnetic compatibility standards for their products, which indicates that the device working under the EMC regulations does not affect itself or another device due to electromagnetic radiation. </span><span data-ccp-props="{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:160,&quot;335559740&quot;:259}"> </span></p><p><span data-contrast="auto">The process of shielding involves creating an enclosure of specially designed materials around the electronic appliances, to protect them from unwanted radiations. </span></p><p><span data-contrast="auto">These enclosures attenuate incoming radiations through reflection, absorption, and multiple reflections. The attenuation of electromagnetic radiations by a shield is strongly governed by its intrinsic and extrinsic properties, such as intrinsic impedance, shield thickness, permittivity, electrical conductivity, etc. </span></p><p><span data-contrast="auto">These intrinsic and extrinsic properties can be optimized by choosing suitable shielding materials with specific thickness, doping them with other materials, and designing their architecture in a smart manner. </span><span data-ccp-props="{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:160,&quot;335559740&quot;:259}"> </span></p><p><b><span data-contrast="auto">Various materials such as metals, polymers, polymer carbon composites, ceramic polymer composites, foams, etc., </span></b><span data-contrast="auto">have been utilized to develop numerous (EMI) Electromagnetic interference shields to suit the requirements of different applications. </span></p><p><span data-contrast="auto">Traditionally metals have been used as shielding materials for attenuating electromagnetic pollution. The metals have high shielding capability and good mechanical strength; however, their employment in the emerging technologies is limited by their high density, poor mechanical flexibility, corrosiveness, and expensive processing costs. </span><span data-ccp-props="{&quot;201341983&quot;:0,&quot;335551550&quot;:6,&quot;335551620&quot;:6,&quot;335559739&quot;:160,&quot;335559740&quot;:259}"> </span></p>								</div>
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															<img decoding="async" width="748" height="720" src="https://ttconsultants.com/wp-content/uploads/2022/05/2.jpg" class="attachment-medium_large size-medium_large wp-image-32847" alt="Types of EMI shielding materials" srcset="https://ttconsultants.com/wp-content/uploads/2022/05/2.jpg 748w, https://ttconsultants.com/wp-content/uploads/2022/05/2-300x289.jpg 300w" sizes="(max-width: 748px) 100vw, 748px" />															</div>
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									<p><strong><span class="TextRun SCXW111034705 BCX8" lang="EN-GB" xml:lang="EN-GB" data-contrast="auto"><span class="NormalTextRun SCXW111034705 BCX8">Figure </span><span class="NormalTextRun SCXW111034705 BCX8">2</span><span class="NormalTextRun SCXW111034705 BCX8">.</span></span><span class="TextRun SCXW111034705 BCX8" lang="EN-GB" xml:lang="EN-GB" data-contrast="auto"><span class="NormalTextRun SCXW111034705 BCX8"> Types of </span><span class="NormalTextRun SCXW111034705 BCX8">EMI shielding</span><span class="NormalTextRun SCXW111034705 BCX8"> materials</span></span></strong></p>								</div>
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									<p><span data-contrast="auto">In order to overcome such limitations, advanced shielding materials based on </span><b><span data-contrast="auto">carbon, polymers, and ceramic composites have been developed</span></b><span data-contrast="auto">. Electric conductivity is an important factor governing the shielding properties of these materials. Materials are required to possess high electrical conductivity so that they exhibit higher absorption, and hence deliver large shielding effectiveness values.</span></p>
<p><b><span data-contrast="auto">The use of carbon contents such as carbon nanotubes (CNTs), carbon nanofibers, graphene, etc.,</span></b><span data-contrast="auto"> as filler in the polymer matrix, significantly enhances its shielding properties, owing to its higher electrical conductivity.&nbsp;</span></p><p><b><span data-contrast="auto">Popularly used polymers for making the polymer carbon composite include Polyaniline (PANI), polydimethylsiloxane (PDMS), ethylene acrylic, siloxane, etc.,</span></b> <b><span data-contrast="auto">and conductive filler utilized for their manufacturing includes reduced graphene oxide (RGO), carbon nanotubes, carbon nanoparticles, etc.</span></b><span data-contrast="auto">&nbsp;</span></p><p><span data-contrast="auto">The polymeric materials with conductive filler incorporated in them are also sometimes known as intrinsically conducting polymers (ICP), and conductive polymer-based composites (CPC).&nbsp;</span><span data-ccp-props="{">&nbsp;</span></p>
<p><span data-contrast="auto">Another category of shielding materials is </span><b><span data-contrast="auto">foam-based materials</span></b><span data-contrast="auto">. The advantage of using foam-based materials is their high flexibility and lightweight structure; however, they have little mechanical strength.&nbsp;</span></p><p><b><span data-contrast="auto">Hollow carbon micro balloons (HCM), hollow Poly pyrrole spheres (HPS), copper-coated cenospheres (Cu@CS), etc., are a few examples of synthetic foams</span></b><span data-contrast="auto"> that are utilized for making flexible and lightweight shielding materials. Research has shown that the inclusion of carbon-based materials such as carbon nanofiber, carbon nanotube, etc., into the foam significantly improves their shielding capabilities. </span><span data-ccp-props="{">&nbsp;</span></p>
<p><span data-contrast="auto">Recently, </span><b><span data-contrast="auto">some ferrite polymer composites</span></b><span data-contrast="auto"> have also been developed by different researchers and have been shown to perform well as shielding enclosures. </span><b><span data-contrast="auto">Materials such as hexaferrite and spinel ferrites</span></b><span data-contrast="auto"> have also been found effective in shielding electromagnetic radiations due to their higher absorption capabilities.</span><span data-ccp-props="{">&nbsp;</span></p>
<p><span data-contrast="none">In the past few years, sandwich structures have also become popular in shielding technology. These </span><b><span data-contrast="none">sandwich structures exhibit frequency-selective shielding</span></b><span data-contrast="none"> which is required for next-generation applications.&nbsp;</span></p><p><span data-contrast="none">In the sandwich structure, the electromagnetic radiation of a specific frequency undergoes multiple reflections, based on the dimensions of the structures, and hence results in significant absorption of that frequency. Due to intense absorption of a specific frequency, these shields exhibit frequency-selective shielding.&nbsp;</span></p><p><span data-contrast="none">For enhancing the absorption, </span><b><span data-contrast="none">carbon-based materials</span></b><span data-contrast="none"> such as graphene are utilized as a central layer of the sandwich structure; whereas the external layers are usually made up of reflecting surfaces to enable multiple reflections within the structure.&nbsp;</span></p><p><span data-contrast="none">The most recent research has shown that a few of the </span><b><span data-contrast="none">ceramic materials</span></b><span data-contrast="none"> also exhibit frequency-selective and tunable shielding properties even without requiring sandwich structure and costly material like graphene. </span><span data-ccp-props="{">&nbsp;</span></p>
<p><span data-contrast="auto">With the advent of internet-of-things, human beings are also required to carry multiple electronic gadgets with them, which are a regular source of electromagnetic radiation.&nbsp;</span></p><p><span data-contrast="auto">For providing protection against these radiations, lightweight and thin fabrics with EMI shielding capabilities are also required to be designed. A lot of research has been going on in the electronics and textile industry for manufacturing such fabrics.&nbsp;</span></p><p><span data-contrast="auto">The process of manufacturing these fabrics includes coating the thread of the regular fabrics such as Polyethylene terephthalate (PET) with a solution of shielding material. After coating, these threads are used to make clothes with shielding capabilities. For eg, polyethylene terephthalate (PET) fibers coated with conducting materials such as copper solution show good shielding capabilities.</span><span data-ccp-props="{">&nbsp;</span></p>
<p><span data-contrast="auto">In conclusion, electromagnetic interference (EMI) is a genuine issue that not only influences the normal working of electronic equipment but is also harmful to biological entities.&nbsp;</span></p><p><span data-contrast="auto">For attenuating the stary electromagnetic radiations, the electromagnetic interference (EMI) shields made up of appropriate materials such as metals, polymer carbon composites, ferrites, foam, etc., are required. The choice of shielding material is based on the application requirements.&nbsp;</span></p><p><span data-contrast="auto">For example, applications requiring high mechanical strength and reflection dominant shielding can employ metals as shields, whereas applications requiring flexible structure could utilize foam-based materials. </span><span data-ccp-props="{">&nbsp;</span></p>
<p><span data-contrast="auto">Also, for future technologies, the shielding materials with advanced features of frequency-selectivity, tunability, and shielding capabilities over the high-frequency bands are required. Making lightweight and thin fabrics with good shielding capabilities are also desired for future technologies such as wearable and flexible electronics.</span><span data-ccp-props="{">&nbsp;</span></p>								</div>
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		<p>The post <a href="https://ttconsultants.com/electromagnetic-interference-emi-shielding/">Trends in Electromagnetic Interference (EMI) Shielding</a> appeared first on <a href="https://ttconsultants.com">TT CONSULTANTS</a>.</p>
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