high lux lcd displays quotation
Product quality affects the price of transparent led screen is undeniable. Currently, many units provide different led screens, so the prices provide a lot of difference. Luxmage is proud of NEXNOVO"s exclusive partner in Vietnam, bringing high quality transparent led products. We have implemented various projects in the Vietnamese market.
Planar® CarbonLight™ VX Series is comprised of carbon fiber-framed indoor LED video wall and floor displays with exceptional on-camera visual properties and deployment versatility, available in 1.9 and 2.6mm pixel pitch (wall) and 2.6mm (floor).
From cinema content to motion-based digital art, Planar® Luxe MicroLED Displays offer a way to enrich distinctive spaces. HDR support and superior dynamic range create vibrant, high-resolution canvases for creative expression and entertainment. Leading-edge MicroLED technology, design adaptability and the slimmest profiles ensure they seamlessly integrate with architectural elements and complement interior décor.
From cinema content to motion-based digital art, Planar® Luxe Displays offer a way to enrich distinctive spaces. These professional-grade displays provide vibrant, high-resolution canvases for creative expression and entertainment. Leading-edge technology, design adaptability and the slimmest profiles ensure they seamlessly integrate with architectural elements and complement interior decor.
From cinema content to motion-based digital art, Planar® Luxe MicroLED Displays offer a way to enrich distinctive spaces. HDR support and superior dynamic range create vibrant, high-resolution canvases for creative expression and entertainment. Leading-edge MicroLED technology, design adaptability and the slimmest profiles ensure they seamlessly integrate with architectural elements and complement interior décor.
Planar® CarbonLight™ VX Series is comprised of carbon fiber-framed indoor LED video wall and floor displays with exceptional on-camera visual properties and deployment versatility, available in 1.9 and 2.6mm pixel pitch (wall) and 2.6mm (floor).
Carbon fiber-framed indoor LED video wall and floor displays with exceptional on-camera visual properties and deployment versatility for various installations including virtual production and extended reality.
a line of extreme and ultra-narrow bezel LCD displays that provides a video wall solution for demanding requirements of 24x7 mission-critical applications and high ambient light environments
Since 1983, Planar display solutions have benefitted countless organizations in every application. Planar displays are usually front and center, dutifully delivering the visual experiences and critical information customers need, with proven technology that is built to withstand the rigors of constant use.
Planar® CarbonLight™ VX Series is comprised of carbon fiber-framed indoor LED video wall and floor displays with exceptional on-camera visual properties and deployment versatility, available in 1.9 and 2.6mm pixel pitch (wall) and 2.6mm (floor).
From cinema content to motion-based digital art, Planar® Luxe MicroLED Displays offer a way to enrich distinctive spaces. HDR support and superior dynamic range create vibrant, high-resolution canvases for creative expression and entertainment. Leading-edge MicroLED technology, design adaptability and the slimmest profiles ensure they seamlessly integrate with architectural elements and complement interior décor.
From cinema content to motion-based digital art, Planar® Luxe Displays offer a way to enrich distinctive spaces. These professional-grade displays provide vibrant, high-resolution canvases for creative expression and entertainment. Leading-edge technology, design adaptability and the slimmest profiles ensure they seamlessly integrate with architectural elements and complement interior decor.
From cinema content to motion-based digital art, Planar® Luxe MicroLED Displays offer a way to enrich distinctive spaces. HDR support and superior dynamic range create vibrant, high-resolution canvases for creative expression and entertainment. Leading-edge MicroLED technology, design adaptability and the slimmest profiles ensure they seamlessly integrate with architectural elements and complement interior décor.
Planar® CarbonLight™ VX Series is comprised of carbon fiber-framed indoor LED video wall and floor displays with exceptional on-camera visual properties and deployment versatility, available in 1.9 and 2.6mm pixel pitch (wall) and 2.6mm (floor).
Carbon fiber-framed indoor LED video wall and floor displays with exceptional on-camera visual properties and deployment versatility for various installations including virtual production and extended reality.
a line of extreme and ultra-narrow bezel LCD displays that provides a video wall solution for demanding requirements of 24x7 mission-critical applications and high ambient light environments
Since 1983, Planar display solutions have benefitted countless organizations in every application. Planar displays are usually front and center, dutifully delivering the visual experiences and critical information customers need, with proven technology that is built to withstand the rigors of constant use.
Liquid crystal display (LCD) is a flat panel display that uses the light modulating properties of liquid crystals. Liquid crystals do not produce light directly, instead using a backlight or reflector to produce images in colour or monochrome.
OHF Series is conveniently and easily installed, designed and operated with a thin, all-in-one solution, which comes in a package which includes ingress protection, anti-reflection technology, an embedded power box, vandalism protection and a highly efficient cooling system. In addition, the embedded power box helps to condense operational components to the point where an ultra slim depth of 85mm* can be attained, while the functionality of embedded network hub allow for simple connection and easy installation.
Advanced display protection is provided through the 5 mm (0.19 in.) tempered Magic Glass featuring durability that is IK10-certified (European strength test), further referencing its robust level of strength that can endure external impacts. In addition, a gap between the Magic Glass and the LCD panel prevents LCD breakage when the protection glass is broken.
OHF Series displays feature innovative Magic Glass, TUV Certified Image Quality and an Auto Brightness Sensor to optimize brightness in order to optimally convey messaging to virtually any viewer. These powerful displays also feature circular
polarizing technology that eliminates display blindness caused by polarized sunglasses. OHF Series captivate viewers with superior messaging clarity delivered with high 2,500 nit brightness and 5,000:1 high contrast ratio.
Greater content visibility is achieved under a combination of high brightness, lower reflection and high contrast ratio. The Magic Glass of the OHF Series that is in front of the displays" LCD panels removes the protection glass reflection,
To deal with dust, moisture and other environmental variables that can damage your outdoor signage and impede operation, OHF Series ensure a high level of ingress defense with IP56 level protection that extends throughout the entire display.
To evaluate the performance of display devices, several metrics are commonly used, such as response time, CR, color gamut, panel flexibility, viewing angle, resolution density, peak brightness, lifetime, among others. Here we compare LCD and OLED devices based on these metrics one by one.
The last finding is somehow counter to the intuition that a LCD should have a more severe motion picture image blur, as its response time is approximately 1000 × slower than that of an OLED (ms vs. μs). To validate this prediction, Chen et al.
If we want to further suppress image blur to an unnoticeable level (MPRT<2 ms), decreasing the duty ratio (for LCDs, this is the on-time ratio of the backlight, called scanning backlight or blinking backlight) is mostly adopted
High CR is a critical requirement for achieving supreme image quality. OLEDs are emissive, so, in theory, their CR could approach infinity to one. However, this is true only under dark ambient conditions. In most cases, ambient light is inevitable. Therefore, for practical applications, a more meaningful parameter, called the ACR, should be considered
To investigate the ACR, we have to clarify the reflectance first. A large TV is often operated by remote control, so touchscreen functionality is not required. As a result, an anti-reflection coating is commonly adopted. Let us assume that the reflectance is 1.2% for both LCD and OLED TVs. For the peak brightness and CR, different TV makers have their own specifications. Here, without losing generality, let us use the following brands as examples for comparison: LCD peak brightness=1200 nits, LCD CR=5000:1 (Sony 75″ X940E LCD TV); OLED peak brightness=600 nits, and OLED CR=infinity (Sony 77″ A1E OLED TV). The obtained ACR for both LCD and OLED TVs is plotted in Figure 7a. As expected, OLEDs have a much higher ACR in the low illuminance region (dark room) but drop sharply as ambient light gets brighter. At 63 lux, OLEDs have the same ACR as LCDs. Beyond 63 lux, LCDs take over. In many countries, 60 lux is the typical lighting condition in a family living room. This implies that LCDs have a higher ACR when the ambient light is brighter than 60 lux, such as in office lighting (320–500 lux) and a living room with the window shades or curtain open. Please note that, in our simulation, we used the real peak brightness of LCDs (1200 nits) and OLEDs (600 nits). In most cases, the displayed contents could vary from black to white. If we consider a typical 50% average picture level (i.e., 600 nits for LCDs vs. 300 nits for OLEDs), then the crossover point drops to 31 lux (not shown here), and LCDs are even more favorable. This is because the on-state brightness plays an important role to the ACR, as Equation (2) shows.
Calculated ACR as a function of different ambient light conditions for LCD and OLED TVs. Here we assume that the LCD peak brightness is 1200 nits and OLED peak brightness is 600 nits, with a surface reflectance of 1.2% for both the LCD and OLED. (a) LCD CR: 5000:1, OLED CR: infinity; (b) LCD CR: 20 000:1, OLED CR: infinity.
Recently, an LCD panel with an in-cell polarizer was proposed to decouple the depolarization effect of the LC layer and color filtersFigure 7b. Now, the crossover point takes place at 16 lux, which continues to favor LCDs.
For mobile displays, such as smartphones, touch functionality is required. Thus the outer surface is often subject to fingerprints, grease and other contaminants. Therefore, only a simple grade AR coating is used, and the total surface reflectance amounts to ~4.4%. Let us use the FFS LCD as an example for comparison with an OLED. The following parameters are used in our simulations: the LCD peak brightness is 600 nits and CR is 2000:1, while the OLED peak brightness is 500 nits and CR is infinity. Figure 8a depicts the calculated results, where the intersection occurs at 107 lux, which corresponds to a very dark overcast day. If the newly proposed structure with an in-cell polarizer is used, the FFS LCD could attain a 3000:1 CRFigure 8b), corresponding to an office building hallway or restroom lighting. For reference, a typical office light is in the range of 320–500 luxFigure 8 depicts, OLEDs have a superior ACR under dark ambient conditions, but this advantage gradually diminishes as the ambient light increases. This was indeed experimentally confirmed by LG Display
Calculated ACR as a function of different ambient light conditions for LCD and OLED smartphones. Reflectance is assumed to be 4.4% for both LCD and OLED. (a) LCD CR: 2000:1, OLED CR: infinity; (b) LCD CR: 3000:1, OLED CR: infinity. (LCD peak brightness: 600 nits; OLED peak brightness: 500 nits).
For conventional LCDs employing a WLED backlight, the yellow spectrum generated by YAG (yttrium aluminum garnet) phosphor is too broad to become highly saturated RGB primary colors, as shown in Figure 9aTable 2. The first choice is the RG-phosphor-converted WLEDFigure 9b, the red and green emission spectra are well separated; still, the green spectrum (generated by β-sialon:Eu2+ phosphor) is fairly broad and red spectrum (generated by K2SiF6:Mn4+ (potassium silicofluoride, KSF) phosphor) is not deep enough, leading to 70%–80% Rec. 2020, depending on the color filters used.
A QD-enhanced backlight (e.g., quantum dot enhancement film, QDEF) offers another option for a wide color gamutFigure 9c), so that high purity RGB colors can be realized and a color gamut of ~90% Rec. 2020 can be achieved. One safety concern is that some high-performance QDs contain the heavy metal Cd. To be compatible with the restriction of hazardous substances, the maximum cadmium content should be under 100 ppm in any consumer electronic product
Recently, a new LED technology, called the Vivid Color LED, was demonstratedFigure 9d), which leads to an unprecedented color gamut (~98% Rec. 2020) together with specially designed color filters. Such a color gamut is comparable to that of laser-lit displays but without laser speckles. Moreover, the Vivid Color LED is heavy-metal free and shows good thermal stability. If the efficiency and cost can be further improved, it would be a perfect candidate for an LCD backlight.
As mentioned earlier, TFT LCDs are a fairly mature technology. They can be operated for >10 years without noticeable performance degradation. However, OLEDs are more sensitive to moisture and oxygen than LCDs. Thus their lifetime, especially for blue OLEDs, is still an issue. For mobile displays, this is not a critical issue because the expected usage of a smartphone is approximately 2–3 years. However, for large TVs, a lifetime of >30 000 h (>10 years) has become the normal expectation for consumers.
Power consumption is equally important as other metrics. For LCDs, power consumption consists of two parts: the backlight and driving electronics. The ratio between these two depends on the display size and resolution density. For a 55″ 4K LCD TV, the backlight occupies approximately 90% of the total power consumption. To make full use of the backlight, a dual brightness enhancement film is commonly embedded to recycle mismatched polarized light
The power efficiency of an OLED is generally limited by the extraction efficiency (ηext~20%). To improve the power efficiency, multiple approaches can be used, such as a microlens array, a corrugated structure with a high refractive index substrateFigure 11 shows the power efficiencies of white, green, red and blue phosphorescent as well as blue fluorescent/TTF OLEDs over time. For OLEDs with fluorescent emitters in the 1980s and 1990s, the power efficiency was limited by the IQE, typically <10 lm W−1(Refs. 41, 114, 115, 116, 117, 118). With the incorporation of phosphorescent emitters in the ~2000 s, the power efficiency was significantly improved owing to the materials and device engineering−1 was demonstrated in 2011 (Ref. 127), which showed a >100 × improvement compared with that of the basic two-layer device proposed in 1987 (1.5 lm W−1 in Ref. 41). A white OLED with a power efficiency >100 lm W−1 was also demonstrated, which was comparable to the power efficiency of a LCD backlight. For red and blue OLEDs, their power efficiencies are generally lower than that of the green OLED due to their lower photopic sensitivity function, and there is a tradeoff between color saturation and power efficiency. Note, we separated the performances of blue phosphorescent and fluorescent/TTF OLEDs. For the blue phosphorescent OLEDs, although the power efficiency can be as high as ~80 lm W−1, the operation lifetime is short and color is sky-blue. For display applications, the blue TTF OLED is the favored choice, with an acceptable lifetime and color but a much lower power efficiency (16 lm W−1) than its phosphorescent counterpartFigure 11 shows.
To compare the power consumption of LCDs and OLEDs with the same resolution density, the displayed contents should be considered as well. In general, OLEDs are more efficient than LCDs for displaying dark images because black pixels consume little power for an emissive display, while LCDs are more efficient than OLEDs at displaying bright images. Currently, a ~65% average picture level is the intersection point between RGB OLEDs and LCDs
Flexible displays have a long history and have been attempted by many companies, but this technology has only recently begun to see commercial implementations for consumer electronics
In addition to the aforementioned six display metrics, other parameters are equally important. For example, high-resolution density has become a standard for all high-end display devices. Currently, LCD is taking the lead in consumer electronic products. Eight-hundred ppi or even >1000 ppi LCDs have already been demonstrated and commercialized, such as in the Sony 5.5″ 4k Smartphone Xperia Z5 Premium. The resolution of RGB OLEDs is limited by the physical dimension of the fine-pitch shadow mask. To compete with LCDs, most OLED displays use the PenTile RGB subpixel matrix scheme
The viewing angle is another important property that defines the viewing experience at large oblique angles, which is quite critical for multi-viewer applications. OLEDs are self-emissive and have an angular distribution that is much broader than that of LCDs. For instance, at a 30° viewing angle, the OLED brightness only decreases by 30%, whereas the LCD brightness decrease exceeds 50%. To widen an LCD’s viewing angle, three options can be used. (1) Remove the brightness-enhancement film in the backlight system. The tradeoff is decreased on-axis brightness
In addition to brightness, color, grayscale and the CR also vary with the viewing angle, known as color shift and gamma shift. In these aspects, LCDs and OLEDs have different mechanisms. For LCDs, they are induced by the anisotropic property of the LC material, which could be compensated for with uniaxial or biaxial films
Cost is another key factor for consumers. LCDs have been the topic of extensive investigation and investment, whereas OLED technology is emerging and its fabrication yield and capability are still far behind LCDs. As a result, the price of OLEDs is about twice as high as that of LCDs, especially for large displays. As more investment is made in OLEDs and more advanced fabrication technology is developed, such as ink-jet printing
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이용자는 본 개인정보 수집·이용 동의서에 따른 동의 시, "필요한 최소한의 정보 외의 개인정보" 수집·이용에 동의하지 아니할 권리가 있습니다. 개인정보 처리에 대한 상세한 사항은 삼성 디스플레이 솔루션즈 홈페이지 (https://displaysolutions.samsung.com/)에 공개한 "개인정보처리방침"을 참조하십시오. 다만, 본 동의서 내용과 상충되는 부분은 본 동의서의 내용이 우선합니다.
D-lux Screen Printing produces many types of high quality screen printed signs. With over 33 years of screen printing experience, the professionals at D-Lux Screen Printing are ready to assist you in any way possible for all your screen printed sign needs.
Whether you’re looking for a sign screen printed on plastic, styrene, acrylic, or even magnetic material, D-lux Screen Printing has what you need. Signs can be screen printed and die cut as a single side sign or printed and folded as a double sided sign.
All screen printed signs are weather resistant and can be used for almost all outdoor applications. Some examples of some of our more popular screen printed signs are contractor signs, political signs, real-estate signs, and sale signs. Custom screen printed signs is what we do. Let D-Lux Screen Printing design your next sign.
D-Lux has the capabilities to run up to 100 dpi (dots per inch) on four color process printing. 4 Color Process is the best way to achieve a wide color gamut by printing only 4 colors, cyan (blue), magenta (red), yellow and black.
The LED backlights of LCD displays are modulated to broadcast relevant information synchronized to the screen content in each frame using visible light communication (VLC) or Li-Fi. The signal is then captured and decoded by a smartphone camera to establish an optical camera communication (OCC) link. This work presents a Li-Fi based QR code (LiQR) backlight modulator that is embedded in a LCD display to enable IoT applications including location and content based information broadcasting.
Clearly, human beings are highly visual in nature, and this is a fact that is particularly important when you’re running a physical store. One of the main reasons why people decide to shop offline is to see merchandise in person, and this is all the more reason to design winning retail displays.
The best way to make a lasting impression is to immerse your customers in a particular environment or setting. Check out the example below. The displays themselves are simple, and the retailer only makes use of a few simple racks and fixtures.
The key takeaway here? Create displays that encourage people to touch and feel for you products. If your items are sitting on a shelf or a table while still inside their respective boxes, you could be missing the chance to connect with your customers.
Need an easy and affordable way to breathe life into your visual merchandising? Use plants. Doing so doesn’t just make your displays more attractive, they can also create healthier and more pleasant shopping experiences.
Having more “green” displays clearly has some benefits, so consider incorporating plants into your designs.For inspiration, look no further than homeware retailer Harper & Grey House. Plants are a staple in their displays and the greens do a tremendous job in accentuating their merchandise.
Speaking of little ones, have you considered creating kid-friendly displays? The practice can be quite effective particularly if you cater to Gen X and Millennial consumers.
Even the most creative displays will fall flat when they’re not well-lit. So invest, in the equipment to make sure that your products are displays in the best possible light.
Is your store on the small side? Consider using portable displays so you can make better use of your space. Such displays are easier to move so you can quickly re-merchandise your shop or make room for other things if necessary.
Portable displays can also help in keeping your visual merchandising focused and on-point. Since you have limited space, you’re forced to only display the most important and most high-impact products.
Colors can make or break your retail displays, which is why it’s essential to select the right color scheme. A big part of this will be driven by the colors of your products. If most of your items are come in pastel shades for instance, then those colors will be quite common in your displays.
That being said, how those products are displayed together matters a great deal. There are various ways to mix and match colors, so have a think about how you’ll do it in your displays.
Timely displays are sure to grab the attention of your customers. Keep a close eye on your retail calendar and make sure that your visual merchandising coincides with relevant shopping events and seasons.
For instance, during last year’s back-to-school season, Target dedicated an entire corner to school supplies and relevant merchandise. The area of the store was filled with large, back-to-school displays that were impossible to miss.
If you’re running multiple stores, make sure your displays reflect the tastes and preferences of each location. Pay attention to local trends and popular products in the area and ensure they’re front and center in your displays.
Got a bunch of quotable quotes up your sleeve? See if you can incorporate them into your retail displays. When done right, a bit of text can complement your products and encourage shoppers to take a closer look.
And as a bonus, walls or displays with quotable quotes are a magnet for Instagram users. With the right display, you’re bound to gain a bunch of social shares and tags along the way.
If you’re looking for ways to showcase your full product lines without cramming your shelves and racks with too much merchandise, then see if you can use technology to “extend” your displays.
In retail, space conveys value. The more space there is in a store or display, the higher the perceived value of the merchandise. This why many luxury retailers display items in standalone cases while discount stores overstuff their shelves with merchandise.
Upcycling — the practice of using old or discarded materials to create something new — can help you build out-of-the-box retail displays. In the example below, we can see that the retailer used old chairs to create racks on which to hang their merchandise.
If you’re celebrating a special holiday or occasion in your store, use your shop displays to show your festive side. Materials like balloons, tassels, garlands and other party supplies could help your displays pop.
With retail being more competitive than ever, there’s just no room for uninspired and mediocre retail displays. Now, more than ever, you need to constantly cook up in-store visuals can stop people in their tracks and encourage them to buy, share, and come back.