Showing posts with label Memory. Show all posts
Showing posts with label Memory. Show all posts

Thursday, June 9, 2016

Process Challenges of 3D (Vertical Transistors)

The article below describes the drive toward 3D vertical transistors above the surface of the chip's die.

"3D NAND represents a major departure from today’s planar NAND. In 2D NAND, the fabrication process is dependent on advanced lithography. In 3D NAND, though, vendors are using trailing-edge 40nm to 20nm design rules. Lithography is still used, but it isn’t the most critical step. So for 3D NAND, the challenges shift from lithography to deposition and etch.”

However the new 3D processes are not easy to implement.

"3D NAND introduces a number of new and difficult process steps to the semiconductor industry...."it has introduced several fairly complex and new processes. Uniformity of these processes is critical. So, from my perspective, the challenges here are focused on variability control of several key processes.”


It will be interesting how well Intel and Micron XPoint (see SSD, 3D Vertical NAND, or 3D XPoint?) products will succeed against current 3D products (see November 2012 3D NAND flash is coming)

Ron
Insightful, timely, and accurate semiconductor consulting.
Semiconductor information and news at - http://www.maltiel-consulting.com/


How To Make 3D NAND

Foundries progress with complex combination of high-aspect ratio etch, metal deposition and string stacking.

Thursday, May 12, 2016

3D Semiconductor Evolution

http://www.3dincites.com/2016/01/2015-retrospective-outlook-2016-3d-nand-flash-one-upmanship/
Semiconductor companies have been building 3D devices (which are  vertical circuits above the silicon die edge surface) for the last couple years. They have been going in the vertical direction due to the complexity of shrinking the devices (see 2012  Moore's Law Slowwwing ). Samsung has been making 3D V-NAND since 2013 (see Samsung’s 1Tb SSD: 3D Vertical NAND ). Samsung is now using its vertical layer manufacturing know-how to increase its market share in V-NAND and DRAM. More about Samsung's progress below.

Ron
Insightful, timely, and accurate semiconductor consulting.
Semiconductor information and news at - http://www.maltiel-consulting.com/




As tide turns against chip industry, Samsung forges ahead of rivals


By Se Young Lee
Apr. 26, 2016, 7:02 PM Thomson Reuters

SEOUL (Reuters) - Gloom may be settling over much of the world's semiconductor industry but Samsung Electronics Co Ltd is expected to cope better than most due to its strong technological edge, enabling it to boost market share for some key products and possibly even lift revenue.
A plunge in PC sales and slower growth for smartphones globally has hit the sector hard, prompting Intel Corp to say this month it would cut up to 12,000 jobs.
Qualcomm has said fiscal third-quarter chip shipments could fall as much as 22 percent, while SK Hynix Inc on Tuesday reported a 65 percent slide in quarterly operating income - its weakest result in three years.
Samsung, which reports its first-quarter earnings on Thursday, is also hurting. Chip profits - which accounted for just under half of its overall 2015 operating income - are widely expected to fall, with some analysts predicting a drop of more than 10 percent in January-March from a year earlier.
But if its rivals are getting pummeled, the South Korean tech giant is merely bruised and is in many ways benefiting as clients shift towards premium power-conserving DRAM chips for smartphones, as well as solid-state drives for data storage using 3D NAND chips.
"The technological gap between Samsung and its competitors in fields such as DRAM and NAND has been widening lately, which helps the company avoid the rate of profit decline seen at other firms," said Song Myung-sub, an analyst at HI Investment & Securities.
Even with a first-quarter drop of around 10 percent, Samsung's chip operating profit is expected to be nearly five times that of SK Hynix.
The world's No. 2 chipmaker also happens to run the world's biggest smartphone business, giving it a captive customer for its chips that none of its rivals have.
"This is a safehouse they can go to," said Avril Wu, an analyst at research firm Trendforce.
Healthy initial sales for Samsung's new flagship Galaxy S7 smartphones are expected to be the main driver of first-quarter operating profit, which the firm has said likely rose 10.4 percent from a year earlier to 6.6 trillion won ($5.8 billion).

DOMINANT POSITION
Of its key products, analysts are most upbeat about Samsung's NAND chip prospects. Samsung was the first to mass produce NAND flash chips using a technology called 3D NAND, helping it assume a dominant position in higher-margin products such as solid-state hard drives for computers and servers.
BNP Paribas expects the South Korean firm's NAND revenue to climb 16 percent and NAND operating profit to jump 69 percent this year. Shipments will also likely outpace the industry average, allowing Samsung to seize more market share, it said in a report.
The technology is already contributing to Samsung's profits, analysts say, adding that this is not the case for main NAND rivals Toshiba Corp, SK Hynix and Micron Technology Inc which are estimated to be as much as three years behind.
Investors and analysts also point to Samsung's superior production technology for DRAM chips, saying the firm is ahead of its closest rivals by at least a year. It can mass produce smaller chips than rivals, which boosts performance and conserves power as well as increasing the number that can be made from a single wafer.
Samsung commanded 58 percent of the mobile DRAM market as of the fourth quarter of 2015, according to TrendForce. Mobile DRAM revenue also accounted for more than half of Samsung's overall DRAM sales for October-March, TrendForce's data shows.

(Reporting by Se Young Lee; Editing by Edwina Gibbs)

Wednesday, December 23, 2015

SSD, 3D Vertical NAND, or 3D XPoint?

As flash memory evolves, new issues are found and as time progress they get resolved. The problems can not be found in advance of creating the higher density of storage. You need to implement the higher storage density before you can find out the problems associated with its implementation. SSD problems mentioned in the article below will be addressed by improved hardware and software and SSD will be used for awhile.

Similarly, 3D Vertical NAND has similar set of issues and it needs a more sophisticated controller to utilize its higher density (see November 2012 post - 3D NAND flash is coming ). In the same way Intel's 3D XPoint will face its own set of challenges when it is finally introduced next year.


Ron
Insightful, timely, and accurate semiconductor consulting.
Semiconductor information and news at - http://www.maltiel-consulting.com/


Was 2015 the beginning of the end for SSDs?


The advent of SSDs has arguably done more to transform the experience of using a computer than any other event in the past eight years. Faster GPUs and CPUs benefit the high-end users that need such horsepower, but solid state disks can breathe new performance into virtually any hardware. The earliest drives may have had performance issues, but once those were ironed out, it was clear that NAND flash’s ascension to the top of the storage market was a question of when, not if, and the “when” depended on questions of reliability and cost-per-bit — not fundamental speed. This fundamental argument has been accepted at every level, from individual PCs to high-end enterprise deployments.
That’s why it’s surprising to see ZDNet instead arguing that 2015 was the “beginning of the end” for NAND flash in the enterprise. This argument hinges on a number of different papers that were published in 2015 concerning NAND reliability, performance, and suitability for datacenter applications. We covered some of these findings when the papers were new, but will summarize the collective findings here:
  • Facebook and Carnegie-Mellon found that higher temperatures can negatively impact SSD reliability and that this correlates with higher bus power consumption as well. Interestingly, this study found that failure rates did not monotonically increase (only increase) with the amount of data written to NAND flash, that sparse data layouts and dense data layouts can both increase failure rates under certain conditions, and that SSDs that don’t throttle andexperience high temperatures have higher failure rates.
  • A major Korean study on VM performance found that SSD garbage collection didn’t mesh well with existing algorithms for that purpose, leading to significant performance degradations in some cases. The paper concluded that it’s currently impossible to guarantee a set number of IOPS when multiple VMs are hosted on a single drive. While this paper used consumer hardware, the flaws it found in how garbage collection is handled would have applied to enterprise equipment as well.
  • A new Sandisk study found that the use of multiple layers of log-structured applications “affects sequentiality and increases write pressure to flash devices through randomization of workloads, unaligned segment sizes, and uncoordinated multi-log garbage collection. All of these effects can combine to negate the intended positive affects of using a log.”
When you put these reports together, they point to issues with SSD reliability, performance, and suitability for certain workloads. But I’m much less certain than ZDnet that this stacks up to NAND’s rapid retreat from the data center.

Teething problems vs. cataclysmic deficiencies

I strongly suspect that if we could rewind the clock to the beginning of the HDD era, we’d see similar comments made about the suitability of hard drives to replace tape. In the 1970s and early 1980s, tape was the proven technology and HDDs, particularly HDDs in consumer systems, was the upstart newcomer. It’s difficult to find comparative costs (and it’s highly segment dependent), but the March 4, 1985 issue of Computerworld suggests that tape drives were far cheaperthan their HDD equivalents.
3d-nand-flash
The advent of 3D NAND flash has the potential to improve NAND reliability
I don’t want to stretch this analogy too far, but I think there’s a lesson here. The pace of hardware innovation is always faster than the software that follows it; you can’t write software to take advantage of hardware that doesn’t exist yet (at least, not very well). It’s not surprising to see that it’s taken years to suss out some of the nuance of SSD use in the enterprise, and it’s also not surprising to discover that there are distinct best practices that need to be implemented in order for SSDs to perform optimally.
To cite one equivalent example — it was a 2005 paper (backed up by an amusing 2009 video) that demonstrated howshouting at hard drives could literally make them stop working. While drive OEMs were obviously aware of the need to dampen vibrations in enterprise deployments long before then, the issue bubbled up to consumer awareness in that timeframe.
Hard drives, nevertheless, continue to be sold in large numbers — even in enterprise deployments.
None of this is to suggest that NAND flash is foolproof or does not need a medium-to-long-term replacement. I’ve covered several such potential replacements just this year. It does, however, suggest that a bit more perspective is in order. It’s easy to promise huge gains on paper and extremely difficult to deliver those gains in a scaleable, cost-effective manner.
Right now, it looks as though 3D NAND adoption will drive the further evolution of SSD technology for the next 3-5 years. That, in turn, will make it more difficult for alternative technologies to find footing — a replacement storage solution will need to match the improving density of 3D NAND, or offer multiple orders of magnitude better performance in order to disrupt the NAND industry. Intel’s joint Micron venture and its 3D XPoint could disrupt the status quo when it arrives next year, but I’ll wait for benchmarks and hard data before concluding that it will.
Far from being the beginning of the end, I suspect 2015 was the end of the beginning of NAND flash, and will mark a shift towards software-level optimization and a better understanding of best practices as the technology moves deeper into data centers.